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266 changed files with 1753 additions and 13695 deletions
-14
View File
@@ -74,26 +74,12 @@ jobs:
set +e
./OrcaSlicer_profile_validator -p ${{ github.workspace }}/resources/profiles -l 2 2>&1 | tee ${{ runner.temp }}/validate_system.log
exit ${PIPESTATUS[0]}
# The validator above is the nightly build of main, so it cannot slice profiles that use
# settings a PR adds to the engine: it reports their placeholders as undefined. A PR that
# changes src/ also runs Build all, whose Slice check runs this same sweep with the
# validator built from the PR, so the sweep below only runs for the other PRs.
- name: Detect engine changes
id: engine_changes
if: ${{ github.event_name == 'pull_request' }}
run: |
base=${{ github.event.pull_request.base.sha }}
if git fetch --no-tags --depth=1 origin "$base" && ! git diff --quiet "$base" HEAD -- src/; then
echo "changed=true" >> "$GITHUB_OUTPUT"
echo "::notice::This PR changes src/, so Build all's Slice check slices the profiles with the PR-built validator."
fi
# Slice a two-colour cube through every printer, and through every system process/filament whose
# templates no printer's own slice reaches, so every custom g-code and filename_format shipped is
# expanded (names in {if} branches not taken included) - catches undefined-placeholder /
# invalid-flow bugs the static checks above cannot see.
- name: validate slice (expand custom g-code)
id: validate_slice
if: ${{ steps.engine_changes.outputs.changed != 'true' }}
continue-on-error: true
run: |
set +e
+3 -36
View File
@@ -8,10 +8,9 @@ SCRIPT_PATH=$(dirname "$(readlink -f "${0}")")
pushd "${SCRIPT_PATH}" > /dev/null
function usage() {
echo "Usage: ./${SCRIPT_NAME} [-1][-b][-c][-d][-D][-e][-F][-g][-h][-i][-j N][-J N][-p][-r][-s][-t][-u][-l][-L]"
echo "Usage: ./${SCRIPT_NAME} [-1][-b][-c][-d][-D][-e][-F][-g][-h][-i][-j N][-p][-r][-s][-t][-u][-l][-L]"
echo " -1: limit builds to one core (where possible)"
echo " -j N: limit builds to N cores (where possible)"
echo " -J N: build up to N dependencies at a time, each still using -j jobs (default: 1)"
echo " -b: build in Debug mode"
echo " -c: force a clean build"
echo " -C: enable ANSI-colored compile output (GNU/Clang only)"
@@ -37,13 +36,12 @@ function usage() {
}
SLIC3R_PRECOMPILED_HEADERS="ON"
DEPS_PARALLEL=""
unset name
BUILD_DIR=build
BUILD_CONFIG=Release
FORWARDED_ARGS=()
while getopts ":1j:J:bcCdDeFghiprstulL" opt ; do
while getopts ":1j:bcCdDeFghiprstulL" opt ; do
case ${opt} in
1 )
export CMAKE_BUILD_PARALLEL_LEVEL=1
@@ -53,10 +51,6 @@ while getopts ":1j:J:bcCdDeFghiprstulL" opt ; do
export CMAKE_BUILD_PARALLEL_LEVEL=$OPTARG
FORWARDED_ARGS+=("-j" "$OPTARG")
;;
J )
DEPS_PARALLEL=$OPTARG
FORWARDED_ARGS+=("-J" "$OPTARG")
;;
b )
BUILD_DIR=build-dbg
BUILD_CONFIG=Debug
@@ -141,11 +135,6 @@ if [[ -n "${CLEAN_DOCKER_IMAGE}" ]] && [[ -z "${USE_DOCKER}" ]] ; then
exit 1
fi
if [[ -n "${DEPS_PARALLEL}" ]] && ! [[ "${DEPS_PARALLEL}" =~ ^[1-9][0-9]*$ ]] ; then
echo "Error: -J expects a positive integer."
exit 1
fi
function check_available_memory_and_disk() {
FREE_MEM_GB=$(free --gibi --total | grep 'Mem' | rev | cut --delimiter=" " --fields=1 | rev)
MIN_MEM_GB=10
@@ -548,29 +537,7 @@ if [[ -n "${BUILD_DEPS}" ]] ; then
fi
print_and_run cmake -S deps -B deps/$BUILD_DIR "${CMAKE_C_CXX_COMPILER_CLANG[@]}" "${CMAKE_LLD_LINKER_ARGS[@]}" "${CMAKE_CCACHE_ARGS[@]}" -G Ninja "${COLORED_OUTPUT}" "${BUILD_ARGS[@]}"
# The top-level build runs one dependency at a time by default, which keeps the console
# output readable and lets that dependency's own build use all of CMAKE_BUILD_PARALLEL_LEVEL.
# -J raises the top level instead, and -j still applies in full to every dependency, so the
# worst case is -J times -j compile jobs at once. Ninja has no job server to share a pool
# across the nested builds, so that ceiling is not enforced anywhere: pick -J to suit the RAM.
DEPS_JOBS=1
if [[ -n "${DEPS_PARALLEL}" ]] ; then
DEPS_JOBS=${DEPS_PARALLEL}
SAVED_PARALLEL_LEVEL=${CMAKE_BUILD_PARALLEL_LEVEL-}
export CMAKE_BUILD_PARALLEL_LEVEL=${CMAKE_BUILD_PARALLEL_LEVEL:-$(nproc)}
echo "Building up to ${DEPS_JOBS} dependencies at a time, ${CMAKE_BUILD_PARALLEL_LEVEL} jobs each: up to $(( DEPS_JOBS * CMAKE_BUILD_PARALLEL_LEVEL )) compile jobs at once."
fi
print_and_run cmake --build deps/$BUILD_DIR -j"${DEPS_JOBS}"
if [[ -n "${DEPS_PARALLEL}" ]] ; then
# Give the whole -j back to the OrcaSlicer build below.
if [[ -n "${SAVED_PARALLEL_LEVEL}" ]] ; then
export CMAKE_BUILD_PARALLEL_LEVEL=${SAVED_PARALLEL_LEVEL}
else
unset CMAKE_BUILD_PARALLEL_LEVEL
fi
fi
print_and_run cmake --build deps/$BUILD_DIR -j1
fi
if [[ -n "${BUILD_ORCA}" ]] || [[ -n "${BUILD_TESTS}" ]] ; then
@@ -88,18 +88,6 @@ struct NfpPConfig {
*/
bool explore_holes = false;
/**
* @brief Keep the final pile on the bin.
*
* The final alignment centres the pile on the alignment target. A target
* near an edge (a belt printer starts its parts at the leading end of the
* belt) would push part of a pile that is larger than the room around that
* point off the bed; with this set the pile stops at the edge instead, and a
* pile that does not fit along an axis is centred on it. Off by default, so
* the alignment of every other printer is unchanged.
*/
bool clamp_to_bin = false;
/**
* @brief If true, use all CPUs available. Run on a single core otherwise.
*/
@@ -1123,24 +1111,7 @@ private:
default: ; // DONT_ALIGN
}
auto d = cb - ci;
// Keep the pile on the bin (see Config::clamp_to_bin). The items' boxes carry
// their inflation, which is the margin left at the edge.
if (config_.clamp_to_bin) {
auto on_bin = [](Coord lo, Coord hi, Coord bin_lo, Coord bin_hi, Coord shift) {
if (hi - lo >= bin_hi - bin_lo)
return (bin_lo + bin_hi) / 2 - (lo + hi) / 2;
if (lo + shift < bin_lo)
shift = bin_lo - lo;
if (hi + shift > bin_hi)
shift = bin_hi - hi;
return shift;
};
setX(d, on_bin(getX(bb.minCorner()), getX(bb.maxCorner()), getX(bbin.minCorner()), getX(bbin.maxCorner()), getX(d)));
setY(d, on_bin(getY(bb.minCorner()), getY(bb.maxCorner()), getY(bbin.minCorner()), getY(bbin.maxCorner()), getY(d)));
cb = ci + d;
}
auto d = cb - ci;
// BBS make sure the item won't clash with excluded regions
// do we have wipe tower after arranging?
-90
View File
@@ -1,90 +0,0 @@
# Separated infills — High Level Design
## Purpose and scope
An object's infill patterns are laid out from one reference point, the center
of the object. When an object groups several parts that do not touch, every
part cuts the same object-wide pattern at a different place, so equal parts get
different infill. `separated_infills` lays the infill of every connected body
out from the center of that body instead, as if the body were sliced on its own.
The option covers sparse infill, internal solid infill and bridges. Top and
bottom surfaces are left to `center_of_surface_pattern`, which centers the
Archimedean Chords and Octagram Spiral surface patterns. The option is off by
default; with it off, or for an object made of a single body, no fill changes.
Adaptive Cubic and Support Cubic do not depend on the option: they always fill
each body on its own (see Octree infill).
## Bodies
`PrintObject::prepare_infill()` groups the islands of every layer (`lslices`)
into 3D connected bodies before bridges are detected, so bridge anchors and
printed infill share one origin. Islands on adjacent layers belong to one body
when their slices overlap. Parts that touch or overlap form one body. Separate
parts, disconnected islands of one mesh, and interleaved parts that never touch,
such as chain links, each form their own. Every island stores the index of its
body in `Layer::lslices_separated_component_ids`, and
`PrintObject::separated_body_bboxes()` holds the bounding box of each body over
all its layers.
The pass runs when a region uses separated infills, per-model surface centering
or an octree infill pattern. It is skipped when the object has one model part
that cannot be split, since a single body already shares the object center.
## Centering a fill
`infill_body()` matches each fill region to the island it overlaps most, among
the islands whose bounding boxes overlap it, and the filler takes the bounding
box of that island's body instead of the object's. The box covers every layer
of the body, which is the box the body gets when sliced alone, so patterns that
depend on its extent as well as its center come out the same too. Bridge
anchoring (`Layer::generate_sparse_infill_polylines_for_anchoring()`) makes the
same choice, so the anchors match the printed infill.
The patterns follow the body's box in one of two ways:
- Rectilinear and its variants, Line, Grid, Triangles, Tri-hexagon, Cubic,
Quarter Cubic, Lateral Lattice, Lateral Honeycomb and the plane-path patterns
(Hilbert Curve, Archimedean Chords, Octagram Spiral) are laid out from the
box: they phase their lines through its center, and Hilbert Curve and the Zig
Zag links start from its corner. `Fill::extended_object_bounding_box()`
extends the box about its center, so it also serves a box that is not
centered on the origin.
- Honeycomb, 3D Honeycomb, Cross Hatch, Gyroid, TPMS-D and TPMS-FK are laid out
from the coordinate origin, which is the object center. They return true from
`Fill::aligned_to_origin()`, and `Fill::fill_surface()` moves each region so
that the box center lands on the origin, fills it, and moves the paths back.
With the default box the center is the origin, so nothing moves.
`is_separable_infill_pattern()` lists these patterns. The settings show the
option only when the sparse infill pattern is one of them.
## Octree infill
Adaptive Cubic and Support Cubic take their lines from an octree, laid out from
the center of the mesh it is built from and refined near its surfaces. An
octree of the whole object would lay every part out from the object's center
and refine it near the other parts, so these patterns
(`is_octree_infill_pattern()`) always fill each body on its own, and the
settings hide the option for them.
For an object of several bodies, `PrintObject::prepare_adaptive_infill_data()`
builds one octree per body (`FillAdaptive::Octrees`) from the triangles of that
body only, which is the octree the body gets when sliced alone. Each connected
component of the mesh goes to the body that most of a few sampled triangles lie
on. A sample is taken a layer height inside the solid, behind the triangle, and
looked up in the islands of the nearest layer. Each internal bridge surface goes
to the body of its island. The fill takes the octree of the region's body, from
the same `infill_body()`. The octree of the whole object is built only for an
object of a single body, or when some body received no triangles, which then
uses it.
## Patterns left out
Lightning grows its trees over the whole object, so moving a reference point
cannot center it on one body. Concentric and Spiral Inset follow the outline of
each region and need no centering.
Solid infill at full density spaces its lines over the extent of each region,
so it is already independent of the other bodies. Only bridges, which keep
their line spacing, and the plane-path solid patterns depend on the center.
@@ -1,79 +0,0 @@
#!/usr/bin/env python3
"""Belt temperature-tower asset generator (discrete-provini design).
A vertical temperature tower cannot be sliced on a belt printer, so lay a row of
DISCRETE provini (one per temperature) along the belt (designed Y) with a fixed
surface gap. Each provino is the chevron+arc unit (belt_temp_provino_unit.stl,
keel-first); its temperature is ENGRAVED upright into the 50 mm face — a raised
number would be an unsupported overhang on the belt. The C++ calib_temp belt branch
(Plater.cpp) injects one M104 per zone 70 layers INTO provino i:
print_z[i] = i * PITCH * cos(theta) + 70 * layer_height (theta = 45)
inside the body, not in the empty inter-provino gap (which has no sliced layers for
the event to attach to). PITCH below is the shared geometry contract with that code —
keep them in sync.
Generates one STL per filament temp range used by Temp_Calibration_Dlg.
"""
import numpy as np, trimesh, os
from matplotlib.textpath import TextPath
from matplotlib.font_manager import FontProperties
from shapely.geometry import Polygon as ShPoly
from shapely.ops import unary_union
HERE = os.path.dirname(os.path.abspath(__file__))
UNIT = os.path.join(HERE, 'belt_temp_provino_unit.stl') # single provino, keel-first
SURF_GAP = 25.0 # surface-to-surface gap between provini (mm) — user spec
TEXT_H = 9.0
TEXT_DEPTH = 0.8 # engraving depth (numbers are CUT into the face, not raised:
# a raised number is an unsupported Y-overhang on the belt)
TEXT_OVERSHOOT = 0.6 # extra height poking out of the face for a clean boolean cut
# Temperature ranges (start, end) per filament family, 5 C step. File name encodes them.
RANGES = [(230,190),(270,230),(250,230),(280,240),(240,210),(320,280)]
unit = trimesh.load(UNIT)
dY = unit.bounds[1,1] - unit.bounds[0,1]
PITCH = dY + SURF_GAP # designed-Y pitch == C++ contract constant
print(f"unit dY={dY:.2f} PITCH={PITCH:.3f} (C++ contract: print_z[i]=i*{PITCH:.3f}*cos45)")
# 50 mm face normal (0,-1,1)/sqrt2 ; UPRIGHT basis u=+X det(+1) (verified non-mirrored)
n = np.array([0,-1,1.])/np.sqrt(2)
u = np.array([1,0,0.]); v = np.array([0,1,1.])/np.sqrt(2)
R = np.column_stack([u,v,n])
fn = unit.face_normals; fc = unit.triangles_center; fa = unit.area_faces
sel = (fn@n) > 0.9
face_c = (fc[sel]*fa[sel,None]).sum(0)/fa[sel].sum()
def text_mesh(s):
tp = TextPath((0,0), s, size=TEXT_H, prop=FontProperties(family='DejaVu Sans'))
rings = [ShPoly(p) for p in tp.to_polygons() if len(p)>=3]
rings.sort(key=lambda r:r.area, reverse=True)
used=[False]*len(rings); parts=[]
for i,o in enumerate(rings):
if used[i]: continue
holes=[]
for j in range(i+1,len(rings)):
if not used[j] and o.contains(rings[j]): holes.append(rings[j].exterior.coords); used[j]=True
parts.append(ShPoly(o.exterior.coords,holes)); used[i]=True
poly = unary_union(parts)
geoms = list(poly.geoms) if poly.geom_type=='MultiPolygon' else [poly]
m = trimesh.util.concatenate([trimesh.creation.extrude_polygon(g,height=TEXT_DEPTH+TEXT_OVERSHOOT) for g in geoms])
c = m.bounds.mean(axis=0); m.apply_translation([-c[0],-c[1],0]); return m
for t_start, t_end in RANGES:
temps = list(range(t_start, t_end-1, -5))
parts=[]
for i,T in enumerate(temps):
c = unit.copy(); c.apply_translation([0, i*PITCH, 0])
t = text_mesh(str(T)); M=np.eye(4); M[:3,:3]=R; t.apply_transform(M)
# place the text spanning from TEXT_DEPTH inside the face to TEXT_OVERSHOOT outside,
# then CUT it out of the provino (engrave) — no raised material, no Y-overhang.
t.apply_translation(face_c - n*TEXT_DEPTH + np.array([0,i*PITCH,0]))
c = trimesh.boolean.difference([c, t], engine='manifold')
parts.append(c)
asset = trimesh.util.concatenate(parts)
out = os.path.join(HERE, f"belt_temp_tower_{t_start}_{t_end}.stl")
asset.export(out)
dims = np.round(asset.bounds[1]-asset.bounds[0],1)
wt = all(p.is_watertight for p in parts)
print(f" {t_start}->{t_end}: {len(temps)} zones bbox={dims} watertight={wt} -> {os.path.basename(out)}")
+1 -33
View File
@@ -1,13 +1,9 @@
{
"name": "Custom Printer",
"version": "02.04.00.08",
"version": "02.04.00.07",
"force_update": "0",
"description": "My configurations",
"machine_model_list": [
{
"name": "Generic Belt Printer",
"sub_path": "machine/MyBeltPrinter.json"
},
{
"name": "Generic Klipper Printer",
"sub_path": "machine/MyKlipper.json"
@@ -54,10 +50,6 @@
"name": "0.08mm Extra Fine @MyKlipper",
"sub_path": "process/0.08mm Extra Fine @MyKlipper.json"
},
{
"name": "0.12mm Fine @MyBeltPrinter",
"sub_path": "process/0.12mm Fine @MyBeltPrinter.json"
},
{
"name": "0.12mm Fine @MyKlipper",
"sub_path": "process/0.12mm Fine @MyKlipper.json"
@@ -70,10 +62,6 @@
"name": "0.16mm Optimal @MyKlipper",
"sub_path": "process/0.16mm Optimal @MyKlipper.json"
},
{
"name": "0.20mm Standard @MyBeltPrinter",
"sub_path": "process/0.20mm Standard @MyBeltPrinter.json"
},
{
"name": "0.20mm Standard @MyKlipper",
"sub_path": "process/0.20mm Standard @MyKlipper.json"
@@ -274,10 +262,6 @@
"name": "MyKlipper 0.8 nozzle",
"sub_path": "machine/MyKlipper 0.8 nozzle.json"
},
{
"name": "fdm_belt_common",
"sub_path": "machine/fdm_belt_common.json"
},
{
"name": "fdm_toolchanger_common",
"sub_path": "machine/fdm_toolchanger_common.json"
@@ -290,22 +274,6 @@
"name": "MyRRF 0.4 nozzle",
"sub_path": "machine/MyRRF 0.4 nozzle.json"
},
{
"name": "MyBeltPrinter 0.2 nozzle",
"sub_path": "machine/MyBeltPrinter 0.2 nozzle.json"
},
{
"name": "MyBeltPrinter 0.4 nozzle",
"sub_path": "machine/MyBeltPrinter 0.4 nozzle.json"
},
{
"name": "MyBeltPrinter 0.6 nozzle",
"sub_path": "machine/MyBeltPrinter 0.6 nozzle.json"
},
{
"name": "MyBeltPrinter 0.8 nozzle",
"sub_path": "machine/MyBeltPrinter 0.8 nozzle.json"
},
{
"name": "MyToolChanger 0.2 nozzle",
"sub_path": "machine/MyToolChanger 0.2 nozzle.json"
Binary file not shown.

Before

Width:  |  Height:  |  Size: 30 KiB

@@ -1,27 +0,0 @@
{
"type": "machine",
"name": "MyBeltPrinter 0.2 nozzle",
"inherits": "fdm_belt_common",
"from": "system",
"setting_id": "3w1uyJdmm14QhDnH",
"instantiation": "true",
"printer_model": "Generic Belt Printer",
"default_print_profile": "0.12mm Fine @MyBeltPrinter",
"nozzle_diameter": [
"0.2"
],
"max_layer_height": [
"0.16"
],
"min_layer_height": [
"0.04"
],
"printer_variant": "0.2",
"printable_area": [
"0x0",
"350x0",
"350x350",
"0x350"
],
"printable_height": "300"
}
@@ -1,20 +0,0 @@
{
"type": "machine",
"name": "MyBeltPrinter 0.4 nozzle",
"inherits": "fdm_belt_common",
"from": "system",
"setting_id": "6nRHUtvJOUffocbu",
"instantiation": "true",
"printer_model": "Generic Belt Printer",
"nozzle_diameter": [
"0.4"
],
"printer_variant": "0.4",
"printable_area": [
"0x0",
"350x0",
"350x350",
"0x350"
],
"printable_height": "300"
}
@@ -1,26 +0,0 @@
{
"type": "machine",
"name": "MyBeltPrinter 0.6 nozzle",
"inherits": "fdm_belt_common",
"from": "system",
"setting_id": "K0m9HbUNwKT4UCJV",
"instantiation": "true",
"printer_model": "Generic Belt Printer",
"nozzle_diameter": [
"0.6"
],
"max_layer_height": [
"0.4"
],
"min_layer_height": [
"0.12"
],
"printer_variant": "0.6",
"printable_area": [
"0x0",
"350x0",
"350x350",
"0x350"
],
"printable_height": "300"
}
@@ -1,26 +0,0 @@
{
"type": "machine",
"name": "MyBeltPrinter 0.8 nozzle",
"inherits": "fdm_belt_common",
"from": "system",
"setting_id": "rHAweDz4eNwttPNA",
"instantiation": "true",
"printer_model": "Generic Belt Printer",
"nozzle_diameter": [
"0.8"
],
"max_layer_height": [
"0.6"
],
"min_layer_height": [
"0.2"
],
"printer_variant": "0.8",
"printable_area": [
"0x0",
"350x0",
"350x350",
"0x350"
],
"printable_height": "300"
}
@@ -1,12 +0,0 @@
{
"type": "machine_model",
"name": "Generic Belt Printer",
"model_id": "my_belt_01",
"nozzle_diameter": "0.4;0.2;0.6;0.8",
"machine_tech": "FFF",
"family": "MyPrinter",
"bed_model": "Custom_350_bed.stl",
"bed_texture": "orcaslicer_bed_texture.svg",
"hotend_model": "",
"default_materials": "Generic PLA @System;Generic PLA-CF @System;Generic PETG @System;Generic TPU @System;Generic PC @System;Generic PVA @System;Generic PA @System;Generic PA-CF @System"
}
@@ -1,95 +0,0 @@
{
"type": "machine",
"name": "fdm_belt_common",
"inherits": "fdm_klipper_common",
"from": "system",
"instantiation": "false",
"gcode_flavor": "klipper",
"single_extruder_multi_material": "0",
"default_filament_profile": [
"Generic PLA @System"
],
"default_print_profile": "0.20mm Standard @MyBeltPrinter",
"max_layer_height": [
"0.32"
],
"min_layer_height": [
"0.08"
],
"deretraction_speed": [
"30"
],
"extruder_colour": [
"#FCE94F"
],
"extruder_offset": [
"0x0"
],
"long_retractions_when_cut": [
"0"
],
"nozzle_diameter": [
"0.4"
],
"retract_before_wipe": [
"70%"
],
"retract_length_toolchange": [
"2"
],
"retract_lift_above": [
"0"
],
"retract_lift_below": [
"0"
],
"retract_lift_enforce": [
"All Surfaces"
],
"retract_restart_extra": [
"0"
],
"retract_restart_extra_toolchange": [
"0"
],
"retract_when_changing_layer": [
"1"
],
"retraction_distances_when_cut": [
"18"
],
"retraction_length": [
"0.8"
],
"retraction_minimum_travel": [
"1"
],
"retraction_speed": [
"30"
],
"travel_slope": [
"3"
],
"wipe": [
"1"
],
"wipe_distance": [
"1"
],
"z_hop": [
"0"
],
"z_hop_types": [
"Normal Lift"
],
"gcode_remap_x": "rev_x",
"gcode_remap_y": "pos_z",
"gcode_remap_z": "pos_y",
"belt_printer": "1",
"belt_slice_rotation": "x",
"belt_slice_rotation_angle": "45",
"build_plate_tilt_x": "45",
"purge_in_prime_tower": "0",
"scan_first_layer": "0",
"auxiliary_fan": "0"
}
@@ -1,20 +0,0 @@
{
"type": "process",
"name": "0.12mm Fine @MyBeltPrinter",
"inherits": "fdm_process_klipper_common",
"from": "system",
"setting_id": "EugqqdLJ423bgEwN",
"instantiation": "true",
"layer_height": "0.12",
"initial_layer_print_height": "0.12",
"bottom_shell_layers": "5",
"top_shell_layers": "6",
"support_top_z_distance": "0.08",
"support_bottom_z_distance": "0.08",
"skirt_loops": "0",
"skirt_distance": "0",
"compatible_printers": [
"MyBeltPrinter 0.2 nozzle",
"MyBeltPrinter 0.4 nozzle"
]
}
@@ -1,17 +0,0 @@
{
"type": "process",
"name": "0.20mm Standard @MyBeltPrinter",
"inherits": "fdm_process_klipper_common",
"from": "system",
"setting_id": "YzCDAgH3uLOM53pF",
"instantiation": "true",
"layer_height": "0.2",
"initial_layer_print_height": "0.2",
"skirt_loops": "0",
"skirt_distance": "0",
"compatible_printers": [
"MyBeltPrinter 0.4 nozzle",
"MyBeltPrinter 0.6 nozzle",
"MyBeltPrinter 0.8 nozzle"
]
}
+1 -1
View File
@@ -1,6 +1,6 @@
{
"name": "Elegoo",
"version": "02.04.00.11",
"version": "02.04.00.12",
"force_update": "0",
"description": "Elegoo configurations",
"machine_model_list": [
@@ -15,6 +15,6 @@
"Elegoo"
],
"filament_start_gcode": [
"; filament start gcode\n"
"; Elegoo PLA filament start gcode\n"
]
}
-54
View File
@@ -1,54 +0,0 @@
{
"name": "IdeaFormer",
"version": "02.00.00.06",
"force_update": "0",
"description": "IdeaFormer belt printer configurations",
"machine_model_list": [
{
"name": "IdeaFormer IR3 V2",
"sub_path": "machine/IdeaFormer IR3 V2.json"
}
],
"process_list": [
{
"name": "fdm_process_common",
"sub_path": "process/fdm_process_common.json"
},
{
"name": "0.20mm Standard @IdeaFormer IR3 V2",
"sub_path": "process/0.20mm Standard @IdeaFormer IR3 V2.json"
}
],
"filament_list": [
{
"name": "Generic PLA @IdeaFormer IR3 V2",
"sub_path": "filament/Generic PLA @IdeaFormer IR3 V2.json"
},
{
"name": "eSUN PLA @IdeaFormer IR3 V2",
"sub_path": "filament/eSUN PLA @IdeaFormer IR3 V2.json"
},
{
"name": "Generic PETG @IdeaFormer IR3 V2",
"sub_path": "filament/Generic PETG @IdeaFormer IR3 V2.json"
}
],
"machine_list": [
{
"name": "fdm_machine_common",
"sub_path": "machine/fdm_machine_common.json"
},
{
"name": "fdm_klipper_common",
"sub_path": "machine/fdm_klipper_common.json"
},
{
"name": "fdm_belt_common",
"sub_path": "machine/fdm_belt_common.json"
},
{
"name": "IdeaFormer IR3 V2 0.4 nozzle",
"sub_path": "machine/IdeaFormer IR3 V2 0.4 nozzle.json"
}
]
}
Binary file not shown.

Before

Width:  |  Height:  |  Size: 183 KiB

@@ -1,77 +0,0 @@
{
"type": "filament",
"name": "Generic PETG @IdeaFormer IR3 V2",
"inherits": "Generic PETG @System",
"from": "system",
"setting_id": "n4zaXcUUzTqAxq5f",
"instantiation": "true",
"filament_extruder_variant": [
"Direct Drive Standard"
],
"compatible_printers": [
"IdeaFormer IR3 V2 0.4 nozzle"
],
"filament_type": [
"PETG"
],
"filament_vendor": [
"Generic"
],
"filament_settings_id": [
"Generic PETG @IdeaFormer IR3 V2"
],
"filament_flow_ratio": [
"0.95"
],
"filament_cost": [
"25"
],
"nozzle_temperature": [
"240"
],
"nozzle_temperature_initial_layer": [
"245"
],
"cool_plate_temp": [
"80"
],
"cool_plate_temp_initial_layer": [
"80"
],
"fan_min_speed": [
"40"
],
"fan_max_speed": [
"60"
],
"overhang_fan_threshold": [
"25%"
],
"overhang_fan_speed": [
"80"
],
"full_fan_speed_layer": [
"8"
],
"slow_down_min_speed": [
"20"
],
"slow_down_layer_time": [
"4"
],
"fan_cooling_layer_time": [
"100"
],
"filament_retraction_length": [
"2"
],
"filament_retraction_speed": [
"40"
],
"filament_deretraction_speed": [
"40"
],
"filament_start_gcode": [
"; Generic PETG @IdeaFormer IR3 V2 — belt PETG, bed 80C"
]
}
@@ -1,65 +0,0 @@
{
"type": "filament",
"name": "Generic PLA @IdeaFormer IR3 V2",
"inherits": "Generic PLA @System",
"from": "system",
"setting_id": "1xjycsEAFh6KQIhp",
"instantiation": "true",
"filament_extruder_variant": [
"Direct Drive Standard"
],
"compatible_printers": [
"IdeaFormer IR3 V2 0.4 nozzle"
],
"filament_type": [
"PLA"
],
"filament_vendor": [
"Generic"
],
"filament_settings_id": [
"Generic PLA @IdeaFormer IR3 V2"
],
"nozzle_temperature": [
"215"
],
"hot_plate_temp": [
"75"
],
"hot_plate_temp_initial_layer": [
"75"
],
"cool_plate_temp": [
"75"
],
"cool_plate_temp_initial_layer": [
"75"
],
"textured_plate_temp": [
"75"
],
"textured_plate_temp_initial_layer": [
"75"
],
"close_fan_the_first_x_layers": [
"3"
],
"full_fan_speed_layer": [
"8"
],
"slow_down_min_speed": [
"20"
],
"filament_retraction_length": [
"1.5"
],
"filament_retraction_speed": [
"35"
],
"filament_deretraction_speed": [
"30"
],
"filament_start_gcode": [
"; Generic PLA @IdeaFormer IR3 V2 — belt PLA, bed 75C"
]
}
@@ -1,36 +0,0 @@
{
"type": "filament",
"name": "eSUN PLA @IdeaFormer IR3 V2",
"inherits": "Generic PLA @IdeaFormer IR3 V2",
"from": "system",
"setting_id": "XqkviBmFHEglXueX",
"filament_id": "OFkrxQC4",
"instantiation": "true",
"compatible_printers": [
"IdeaFormer IR3 V2 0.4 nozzle"
],
"filament_type": [
"PLA"
],
"filament_vendor": [
"eSUN"
],
"filament_settings_id": [
"eSUN PLA @IdeaFormer IR3 V2"
],
"nozzle_temperature_initial_layer": [
"200"
],
"nozzle_temperature": [
"200"
],
"enable_pressure_advance": [
"1"
],
"pressure_advance": [
"0.12"
],
"filament_max_volumetric_speed": [
"20"
]
}
@@ -1,98 +0,0 @@
{
"type": "machine",
"name": "IdeaFormer IR3 V2 0.4 nozzle",
"inherits": "fdm_belt_common",
"from": "system",
"setting_id": "MDQZgwRgg72lmjtu",
"instantiation": "true",
"printer_model": "IdeaFormer IR3 V2",
"printer_variant": "0.4",
"nozzle_diameter": [
"0.4"
],
"printable_area": [
"0x0",
"250x0",
"250x2000",
"0x2000"
],
"printable_height": "250",
"belt_printer_infinite_y": "1",
"thumbnails": [
"48x48/PNG",
"300x300/PNG"
],
"default_filament_profile": [
"Generic PLA @IdeaFormer IR3 V2"
],
"default_print_profile": "0.20mm Standard @IdeaFormer IR3 V2",
"use_relative_e_distances": "1",
"machine_max_acceleration_extruding": [
"5000",
"5000"
],
"machine_max_acceleration_retracting": [
"1000",
"1000"
],
"machine_max_acceleration_travel": [
"9000",
"9000"
],
"machine_max_acceleration_x": [
"5000",
"5000"
],
"machine_max_acceleration_y": [
"5000",
"5000"
],
"machine_max_acceleration_z": [
"100",
"100"
],
"machine_max_jerk_x": [
"10",
"10"
],
"machine_max_jerk_y": [
"10",
"10"
],
"machine_max_jerk_z": [
"0.4",
"0.4"
],
"machine_max_speed_e": [
"60",
"60"
],
"machine_max_speed_x": [
"500",
"500"
],
"machine_max_speed_y": [
"500",
"500"
],
"machine_max_speed_z": [
"20",
"20"
],
"retraction_length": [
"2"
],
"retraction_speed": [
"40"
],
"deretraction_speed": [
"40"
],
"retract_lift_below": [
"300"
],
"machine_start_gcode": "; === IdeaFormer IR3 V2 Belt Printer Start ===\n; Axes: X=lateral, Y=gantry height (probe), Z=belt\nG90 ; absolute positioning\nM82 ; absolute extruder\nG21 ; millimeters\nG28 ; home all axes\nG1 Y20 F500 ; lift nozzle 20mm from belt\n; Bed + hotend temps come from the active filament profile. Belt PLA requires 75 C bed — use Generic/eSun PLA @IdeaFormer IR3 V2 filament presets to get it automatically.\nM140 S[hot_plate_temp_initial_layer] ; set bed temp\nM104 S[nozzle_temperature_initial_layer] ; hotend temp\nM109 S[nozzle_temperature_initial_layer] ; wait hotend\nM190 S[hot_plate_temp_initial_layer] ; wait bed\n; --- Purge blob ---\nG92 E0 ; zero extruder\nG1 Y.1 ; nozzle 0.1mm above belt\nG1 E15 F1000 ; purge 15mm blob\nG1 Z20 E25 F800 ; belt advance 20mm + extrude\nG1 E23 ; retract 2mm\nG28 Y ; re-probe belt surface\nG1 E25 ; de-retract\n; --- Prime lines (full 250mm bed width) ---\nFMS_on ; filament motion sensor\nG1 X250 E50 F2000 ; prime line 1\nG92 Z0 ; reset belt origin\nG1 Z.4 ; belt advance 0.4mm\nG1 X0 E75 ; prime line 2\nG1 F1000 ; default feedrate\nG92 E0 Z0 ; zero extruder + belt = print origin\n",
"machine_end_gcode": "; === IdeaFormer IR3 V2 Belt Printer End ===\nM400 ; wait for moves to finish\nM104 S0 ; heater off\nM140 S0 ; bed off\nG92 E0 ; zero extruder\nG1 E-5 F300 ; retract 5mm\nG4 P5000 ; wait for ooze\nG91 ; relative mode - keep every end move relative on a belt\nG1 Y20 F1000 ; raise gantry 20mm for clearance over the part\nG1 Z676 F3000 ; advance belt one full machine-depth to eject the part and clean the belt\nG90 ; back to absolute\nG28 X ; home X only - NEVER 'G28' all: that homes Z/belt and reverses the whole print back into the gantry\nFMS_off ; filament motion sensor off\nBED_MESH_CLEAR\nM84 ; disable motors\n",
"machine_pause_gcode": "PAUSE",
"layer_change_gcode": "G92 E0 ; belt: reset extruder at layer change (relative E)"
}
@@ -1,12 +0,0 @@
{
"type": "machine_model",
"name": "IdeaFormer IR3 V2",
"model_id": "IdeaFormer_IR3_V2",
"nozzle_diameter": "0.4",
"machine_tech": "FFF",
"family": "IdeaFormer",
"bed_model": "",
"bed_texture": "",
"hotend_model": "",
"default_materials": "Generic PLA @IdeaFormer IR3 V2;Generic PETG @IdeaFormer IR3 V2"
}
@@ -1,98 +0,0 @@
{
"type": "machine",
"name": "fdm_belt_common",
"inherits": "fdm_klipper_common",
"from": "system",
"instantiation": "false",
"gcode_flavor": "klipper",
"single_extruder_multi_material": "0",
"default_filament_profile": [
"Generic PLA @System"
],
"default_print_profile": "0.20mm Standard @IdeaFormer IR3 V2",
"max_layer_height": [
"0.32"
],
"min_layer_height": [
"0.08"
],
"deretraction_speed": [
"30"
],
"extruder_colour": [
"#FCE94F"
],
"extruder_offset": [
"0x0"
],
"long_retractions_when_cut": [
"0"
],
"nozzle_diameter": [
"0.4"
],
"retract_before_wipe": [
"70%"
],
"retract_length_toolchange": [
"2"
],
"retract_lift_above": [
"0"
],
"retract_lift_below": [
"0"
],
"retract_lift_enforce": [
"All Surfaces"
],
"retract_restart_extra": [
"0"
],
"retract_restart_extra_toolchange": [
"0"
],
"retract_when_changing_layer": [
"1"
],
"retraction_distances_when_cut": [
"18"
],
"retraction_length": [
"0.8"
],
"retraction_minimum_travel": [
"1"
],
"retraction_speed": [
"30"
],
"travel_slope": [
"3"
],
"wipe": [
"1"
],
"wipe_distance": [
"1"
],
"z_hop": [
"0"
],
"z_hop_types": [
"Normal Lift"
],
"gcode_remap_x": "rev_x",
"gcode_remap_y": "pos_z",
"gcode_remap_z": "pos_y",
"printer_extruder_id": [
"1"
],
"belt_printer": "1",
"belt_slice_rotation": "x",
"belt_slice_rotation_angle": "45",
"build_plate_tilt_x": "45",
"purge_in_prime_tower": "0",
"scan_first_layer": "0",
"auxiliary_fan": "0"
}
@@ -1,140 +0,0 @@
{
"type": "machine",
"name": "fdm_klipper_common",
"inherits": "fdm_machine_common",
"from": "system",
"instantiation": "false",
"gcode_flavor": "klipper",
"machine_max_acceleration_e": [
"5000",
"5000"
],
"machine_max_acceleration_extruding": [
"20000",
"20000"
],
"machine_max_acceleration_retracting": [
"5000",
"5000"
],
"machine_max_acceleration_travel": [
"20000",
"20000"
],
"machine_max_acceleration_x": [
"20000",
"20000"
],
"machine_max_acceleration_y": [
"20000",
"20000"
],
"machine_max_acceleration_z": [
"500",
"200"
],
"machine_max_speed_e": [
"25",
"25"
],
"machine_max_speed_x": [
"500",
"200"
],
"machine_max_speed_y": [
"500",
"200"
],
"machine_max_speed_z": [
"12",
"12"
],
"machine_max_jerk_e": [
"2.5",
"2.5"
],
"machine_max_jerk_x": [
"9",
"9"
],
"machine_max_jerk_y": [
"9",
"9"
],
"machine_max_jerk_z": [
"0.2",
"0.4"
],
"machine_min_extruding_rate": [
"0",
"0"
],
"machine_min_travel_rate": [
"0",
"0"
],
"max_layer_height": [
"0.32"
],
"min_layer_height": [
"0.08"
],
"printable_height": "250",
"extruder_clearance_radius": "65",
"extruder_clearance_height_to_rod": "36",
"extruder_clearance_height_to_lid": "140",
"printer_settings_id": "",
"printer_technology": "FFF",
"printer_variant": "0.4",
"retraction_minimum_travel": [
"1"
],
"retract_before_wipe": [
"70%"
],
"retract_when_changing_layer": [
"1"
],
"retraction_length": [
"0.8"
],
"retract_length_toolchange": [
"2"
],
"z_hop": [
"0.4"
],
"retract_restart_extra": [
"0"
],
"retract_restart_extra_toolchange": [
"0"
],
"retraction_speed": [
"30"
],
"deretraction_speed": [
"30"
],
"z_hop_types": "Normal Lift",
"single_extruder_multi_material": "1",
"change_filament_gcode": "",
"wipe": [
"1"
],
"default_filament_profile": [
"Generic PLA @System"
],
"default_print_profile": "0.20mm Standard @MyKlipper",
"bed_exclude_area": [
"0x0"
],
"machine_start_gcode": "M190 S[bed_temperature_initial_layer_single]\nM109 S[nozzle_temperature_initial_layer]\nPRINT_START EXTRUDER=[nozzle_temperature_initial_layer] BED=[bed_temperature_initial_layer_single]\n",
"machine_end_gcode": "PRINT_END",
"layer_change_gcode": ";AFTER_LAYER_CHANGE\n;[layer_z]",
"before_layer_change_gcode": ";BEFORE_LAYER_CHANGE\n;[layer_z]\nG92 E0\n",
"machine_pause_gcode": "PAUSE",
"scan_first_layer": "0",
"nozzle_type": "undefine",
"auxiliary_fan": "0"
}
@@ -1,118 +0,0 @@
{
"type": "machine",
"name": "fdm_machine_common",
"from": "system",
"instantiation": "false",
"printer_technology": "FFF",
"deretraction_speed": [
"40"
],
"extruder_colour": [
"#FCE94F"
],
"extruder_offset": [
"0x0"
],
"gcode_flavor": "marlin",
"machine_max_acceleration_e": [
"5000"
],
"machine_max_acceleration_extruding": [
"10000"
],
"machine_max_acceleration_retracting": [
"1000"
],
"machine_max_acceleration_x": [
"10000"
],
"machine_max_acceleration_y": [
"10000"
],
"machine_max_acceleration_z": [
"500"
],
"machine_max_speed_e": [
"60"
],
"machine_max_speed_x": [
"500"
],
"machine_max_speed_y": [
"500"
],
"machine_max_speed_z": [
"10"
],
"machine_max_jerk_e": [
"5"
],
"machine_max_jerk_x": [
"8"
],
"machine_max_jerk_y": [
"8"
],
"machine_max_jerk_z": [
"0.4"
],
"machine_min_extruding_rate": [
"0"
],
"machine_min_travel_rate": [
"0"
],
"max_layer_height": [
"0.32"
],
"min_layer_height": [
"0.08"
],
"printable_height": "250",
"extruder_clearance_radius": "65",
"extruder_clearance_height_to_rod": "36",
"extruder_clearance_height_to_lid": "140",
"nozzle_diameter": [
"0.4"
],
"printer_settings_id": "",
"printer_variant": "0.4",
"retraction_minimum_travel": [
"2"
],
"retract_before_wipe": [
"70%"
],
"retract_when_changing_layer": [
"1"
],
"retraction_length": [
"1"
],
"retract_length_toolchange": [
"1"
],
"z_hop": [
"0"
],
"retract_restart_extra": [
"0"
],
"retract_restart_extra_toolchange": [
"0"
],
"retraction_speed": [
"60"
],
"single_extruder_multi_material": "1",
"change_filament_gcode": "",
"wipe": [
"1"
],
"default_print_profile": "",
"machine_start_gcode": "G0 Z20 F9000\nG92 E0; G1 E-10 F1200\nG28\nM970 Q1 A10 B10 C130 K0\nM970 Q1 A10 B131 C250 K1\nM974 Q1 S1 P0\nM970 Q0 A10 B10 C130 H20 K0\nM970 Q0 A10 B131 C250 K1\nM974 Q0 S1 P0\nM220 S100 ;Reset Feedrate\nM221 S100 ;Reset Flowrate\nG29 ;Home\nG90;\nG92 E0 ;Reset Extruder \nG1 Z2.0 F3000 ;Move Z Axis up \nG1 X10.1 Y20 Z0.28 F5000.0 ;Move to start position\nM109 S205;\nG1 X10.1 Y200.0 Z0.28 F1500.0 E15 ;Draw the first line\nG1 X10.4 Y200.0 Z0.28 F5000.0 ;Move to side a little\nG1 X10.4 Y20 Z0.28 F1500.0 E30 ;Draw the second line\nG92 E0 ;Reset Extruder \nG1 X110 Y110 Z2.0 F3000 ;Move Z Axis up",
"machine_end_gcode": "M400 ; wait for buffer to clear\nG92 E0 ; zero the extruder\nG1 E-4.0 F3600; retract \nG91\nG1 Z3;\nM104 S0 ; turn off hotend\nM140 S0 ; turn off bed\nM106 S0 ; turn off fan\nG90 \nG0 X110 Y200 F3600 \nprint_end",
"layer_change_gcode": ";AFTER_LAYER_CHANGE\n;[layer_z]",
"before_layer_change_gcode": ";BEFORE_LAYER_CHANGE\n;[layer_z]\nG92 E0\n",
"machine_pause_gcode": "M601"
}
@@ -1,23 +0,0 @@
{
"type": "process",
"name": "0.20mm Standard @IdeaFormer IR3 V2",
"inherits": "fdm_process_common",
"from": "system",
"setting_id": "91atcIwv5728phqX",
"instantiation": "true",
"layer_height": "0.2",
"initial_layer_print_height": "0.2",
"initial_layer_line_width": "0.42",
"wall_loops": "2",
"reduce_infill_retraction": "1",
"detect_overhang_wall": "1",
"skirt_loops": "0",
"skirt_distance": "0",
"sparse_infill_pattern": "grid",
"sparse_infill_speed": "200",
"support_base_pattern": "rectilinear",
"support_interface_pattern": "rectilinear",
"compatible_printers": [
"IdeaFormer IR3 V2 0.4 nozzle"
]
}
@@ -1,106 +0,0 @@
{
"type": "process",
"name": "fdm_process_common",
"from": "system",
"instantiation": "false",
"reduce_crossing_wall": "0",
"max_travel_detour_distance": "0",
"bottom_surface_pattern": "monotonic",
"bottom_shell_thickness": "0",
"bridge_speed": "50",
"brim_width": "5",
"brim_object_gap": "0.1",
"compatible_printers": [],
"compatible_printers_condition": "",
"print_sequence": "by layer",
"default_acceleration": "1000",
"initial_layer_acceleration": "500",
"top_surface_acceleration": "1000",
"travel_acceleration": "1000",
"inner_wall_acceleration": "1000",
"outer_wall_acceleration": "700",
"bridge_no_support": "0",
"draft_shield": "disabled",
"elefant_foot_compensation": "0",
"enable_arc_fitting": "0",
"wall_infill_order": "inner wall/outer wall/infill",
"infill_direction": "45",
"sparse_infill_density": "15%",
"sparse_infill_pattern": "crosshatch",
"initial_layer_print_height": "0.2",
"infill_combination": "0",
"infill_wall_overlap": "25%",
"interface_shells": "0",
"ironing_flow": "10%",
"ironing_spacing": "0.15",
"ironing_speed": "30",
"ironing_type": "no ironing",
"reduce_infill_retraction": "1",
"filename_format": "{input_filename_base}_{layer_height}mm_{filament_type[initial_tool]}_{printer_model}_{print_time}.gcode",
"detect_overhang_wall": "1",
"slowdown_for_curled_perimeters": "1",
"overhang_1_4_speed": "0",
"overhang_2_4_speed": "50",
"overhang_3_4_speed": "30",
"overhang_4_4_speed": "10",
"line_width": "110%",
"inner_wall_line_width": "110%",
"outer_wall_line_width": "100%",
"top_surface_line_width": "93.75%",
"sparse_infill_line_width": "110%",
"initial_layer_line_width": "120%",
"internal_solid_infill_line_width": "120%",
"support_line_width": "96%",
"wall_loops": "3",
"print_settings_id": "",
"raft_layers": "0",
"seam_position": "aligned",
"skirt_distance": "2",
"skirt_height": "3",
"min_skirt_length": "4",
"skirt_loops": "0",
"minimum_sparse_infill_area": "15",
"spiral_mode": "0",
"standby_temperature_delta": "-5",
"enable_support": "0",
"resolution": "0.012",
"support_type": "normal(auto)",
"support_on_build_plate_only": "0",
"support_top_z_distance": "0.2",
"support_bottom_z_distance": "0.2",
"support_filament": "0",
"support_interface_loop_pattern": "0",
"support_interface_filament": "0",
"support_interface_top_layers": "2",
"support_interface_bottom_layers": "2",
"support_interface_spacing": "0.5",
"support_interface_speed": "80",
"support_base_pattern": "default",
"support_base_pattern_spacing": "2.5",
"support_speed": "150",
"support_threshold_angle": "30",
"support_object_xy_distance": "0.35",
"tree_support_branch_angle": "30",
"tree_support_wall_count": "0",
"detect_thin_wall": "0",
"top_surface_pattern": "monotonicline",
"top_shell_thickness": "0.8",
"enable_prime_tower": "1",
"wipe_tower_no_sparse_layers": "0",
"prime_tower_width": "60",
"xy_hole_compensation": "0",
"xy_contour_compensation": "0",
"layer_height": "0.2",
"bottom_shell_layers": "3",
"top_shell_layers": "4",
"bridge_flow": "1",
"initial_layer_speed": "45",
"initial_layer_infill_speed": "45",
"outer_wall_speed": "45",
"inner_wall_speed": "80",
"sparse_infill_speed": "150",
"internal_solid_infill_speed": "150",
"top_surface_speed": "50",
"gap_infill_speed": "30",
"travel_speed": "200"
}
+1 -1
View File
@@ -1,7 +1,7 @@
{
"name": "Orca Arena Printer",
"url": "",
"version": "02.04.00.07",
"version": "02.04.00.08",
"force_update": "0",
"description": "Orca Arena configuration files",
"machine_model_list": [
+1 -1
View File
@@ -1,6 +1,6 @@
{
"name": "OrcaFilamentLibrary",
"version": "02.04.00.15",
"version": "02.04.00.19",
"force_update": "0",
"description": "Orca Filament Library",
"filament_list": [
@@ -39,7 +39,7 @@
"60"
],
"filament_start_gcode": [
"; filament start gcode\n"
"; Elegoo PLA filament start gcode\n"
],
"filament_end_gcode": [
"; filament end gcode \n"
-54
View File
@@ -1,54 +0,0 @@
{
"name": "Printcepts",
"version": "01.00.00.04",
"force_update": "0",
"description": "Printcepts belt printer configurations",
"machine_model_list": [
{
"name": "BabyBelt Pro",
"sub_path": "machine/BabyBelt Pro.json"
}
],
"process_list": [
{
"name": "fdm_process_common",
"sub_path": "process/fdm_process_common.json"
},
{
"name": "0.20mm Standard @BabyBelt Pro",
"sub_path": "process/0.20mm Standard @BabyBelt Pro.json"
}
],
"filament_list": [
{
"name": "Generic PLA @BabyBelt Pro",
"sub_path": "filament/Generic PLA @BabyBelt Pro.json"
},
{
"name": "eSUN PLA @BabyBelt Pro",
"sub_path": "filament/eSUN PLA @BabyBelt Pro.json"
},
{
"name": "Generic PETG @BabyBelt Pro",
"sub_path": "filament/Generic PETG @BabyBelt Pro.json"
}
],
"machine_list": [
{
"name": "fdm_machine_common",
"sub_path": "machine/fdm_machine_common.json"
},
{
"name": "fdm_klipper_common",
"sub_path": "machine/fdm_klipper_common.json"
},
{
"name": "fdm_belt_common",
"sub_path": "machine/fdm_belt_common.json"
},
{
"name": "BabyBelt Pro 0.4 nozzle",
"sub_path": "machine/BabyBelt Pro 0.4 nozzle.json"
}
]
}
@@ -1,70 +0,0 @@
<?xml version="1.0" encoding="UTF-8"?>
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<!-- Printcepts BabyBelt Pro bed texture: 95 x 500 mm belt plate. -->
<!-- Transparent plate; green (#195F30) BabyBelt Pro logo centered along X, near the bottom edge. -->
<rect x="0" y="0" width="95.0" height="500.0" fill="none"/>
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Before

Width:  |  Height:  |  Size: 55 KiB

@@ -1,77 +0,0 @@
{
"type": "filament",
"name": "Generic PETG @BabyBelt Pro",
"inherits": "Generic PETG @System",
"from": "system",
"setting_id": "gCzHpDNgVwQR6tgk",
"instantiation": "true",
"filament_extruder_variant": [
"Direct Drive Standard"
],
"compatible_printers": [
"BabyBelt Pro 0.4 nozzle"
],
"filament_type": [
"PETG"
],
"filament_vendor": [
"Generic"
],
"filament_settings_id": [
"Generic PETG @BabyBelt Pro"
],
"filament_flow_ratio": [
"0.95"
],
"filament_cost": [
"25"
],
"nozzle_temperature": [
"240"
],
"nozzle_temperature_initial_layer": [
"245"
],
"cool_plate_temp": [
"80"
],
"cool_plate_temp_initial_layer": [
"80"
],
"fan_min_speed": [
"40"
],
"fan_max_speed": [
"60"
],
"overhang_fan_threshold": [
"25%"
],
"overhang_fan_speed": [
"80"
],
"full_fan_speed_layer": [
"8"
],
"slow_down_min_speed": [
"20"
],
"slow_down_layer_time": [
"4"
],
"fan_cooling_layer_time": [
"100"
],
"filament_retraction_length": [
"2"
],
"filament_retraction_speed": [
"40"
],
"filament_deretraction_speed": [
"40"
],
"filament_start_gcode": [
"; Generic PETG @BabyBelt Pro — belt PETG, bed 80C"
]
}
@@ -1,65 +0,0 @@
{
"type": "filament",
"name": "Generic PLA @BabyBelt Pro",
"inherits": "Generic PLA @System",
"from": "system",
"setting_id": "24PpcnhVx9v5f4fD",
"instantiation": "true",
"filament_extruder_variant": [
"Direct Drive Standard"
],
"compatible_printers": [
"BabyBelt Pro 0.4 nozzle"
],
"filament_type": [
"PLA"
],
"filament_vendor": [
"Generic"
],
"filament_settings_id": [
"Generic PLA @BabyBelt Pro"
],
"nozzle_temperature": [
"215"
],
"hot_plate_temp": [
"75"
],
"hot_plate_temp_initial_layer": [
"75"
],
"cool_plate_temp": [
"75"
],
"cool_plate_temp_initial_layer": [
"75"
],
"textured_plate_temp": [
"75"
],
"textured_plate_temp_initial_layer": [
"75"
],
"close_fan_the_first_x_layers": [
"3"
],
"full_fan_speed_layer": [
"8"
],
"slow_down_min_speed": [
"20"
],
"filament_retraction_length": [
"1.5"
],
"filament_retraction_speed": [
"35"
],
"filament_deretraction_speed": [
"30"
],
"filament_start_gcode": [
"; Generic PLA @BabyBelt Pro — belt PLA, bed 75C"
]
}
@@ -1,36 +0,0 @@
{
"type": "filament",
"name": "eSUN PLA @BabyBelt Pro",
"inherits": "Generic PLA @BabyBelt Pro",
"from": "system",
"setting_id": "EH3X7oE0DU5tSpjW",
"filament_id": "OFkrxQC4",
"instantiation": "true",
"compatible_printers": [
"BabyBelt Pro 0.4 nozzle"
],
"filament_type": [
"PLA"
],
"filament_vendor": [
"eSUN"
],
"filament_settings_id": [
"eSUN PLA @BabyBelt Pro"
],
"nozzle_temperature_initial_layer": [
"200"
],
"nozzle_temperature": [
"200"
],
"enable_pressure_advance": [
"1"
],
"pressure_advance": [
"0.12"
],
"filament_max_volumetric_speed": [
"20"
]
}
@@ -1,88 +0,0 @@
{
"type": "machine",
"name": "BabyBelt Pro 0.4 nozzle",
"inherits": "fdm_belt_common",
"from": "system",
"setting_id": "34OWINlJpJgA9DwQ",
"instantiation": "true",
"printer_model": "BabyBelt Pro",
"printer_variant": "0.4",
"nozzle_diameter": [
"0.4"
],
"default_filament_profile": [
"Generic PLA @BabyBelt Pro"
],
"default_print_profile": "0.20mm Standard @BabyBelt Pro",
"printable_area": [
"0x0",
"95x0",
"95x500",
"0x500"
],
"printable_height": "100",
"best_object_pos": "0.5,0.05",
"nozzle_type": [
"hardened_steel"
],
"printer_extruder_id": [
"1"
],
"printer_extruder_variant": [
"Direct Drive Standard"
],
"thumbnails": [
"48x48/PNG",
"300x300/PNG"
],
"machine_max_acceleration_e": [
"500",
"5000"
],
"machine_max_acceleration_extruding": [
"500",
"20000"
],
"machine_max_acceleration_retracting": [
"500",
"5000"
],
"machine_max_acceleration_x": [
"500",
"20000"
],
"machine_max_acceleration_y": [
"500",
"20000"
],
"machine_max_junction_deviation": [
"0.01",
"0.01"
],
"machine_max_speed_x": [
"50",
"200"
],
"machine_max_speed_y": [
"50",
"200"
],
"machine_max_speed_z": [
"5",
"12"
],
"retraction_length": [
"1.5"
],
"retraction_speed": [
"20"
],
"deretraction_speed": [
"25"
],
"retract_lift_enforce": [
"Top and Bottom"
],
"support_chamber_temp_control": "0",
"machine_start_gcode": ";Start GCode\nPRINT_START ANGLE=[belt_slice_rotation_angle] EXTRUDER=[nozzle_temperature_initial_layer] BED=[hot_plate_temp_initial_layer] MATERIAL=[filament_type]\n"
}
@@ -1,12 +0,0 @@
{
"type": "machine_model",
"name": "BabyBelt Pro",
"model_id": "Printcepts_BabyBelt_Pro",
"nozzle_diameter": "0.4",
"machine_tech": "FFF",
"family": "Printcepts",
"bed_model": "",
"bed_texture": "BabyBelt Pro_bed_texture.svg",
"hotend_model": "",
"default_materials": "Generic PLA @BabyBelt Pro;Generic PETG @BabyBelt Pro"
}
@@ -1,98 +0,0 @@
{
"type": "machine",
"name": "fdm_belt_common",
"inherits": "fdm_klipper_common",
"from": "system",
"instantiation": "false",
"gcode_flavor": "klipper",
"single_extruder_multi_material": "0",
"default_filament_profile": [
"Generic PLA @System"
],
"default_print_profile": "0.20mm Standard @BabyBelt Pro",
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"0.32"
],
"min_layer_height": [
"0.08"
],
"deretraction_speed": [
"30"
],
"extruder_colour": [
"#FCE94F"
],
"extruder_offset": [
"0x0"
],
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"0"
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"0.4"
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"retract_before_wipe": [
"70%"
],
"retract_length_toolchange": [
"2"
],
"retract_lift_above": [
"0"
],
"retract_lift_below": [
"0"
],
"retract_lift_enforce": [
"All Surfaces"
],
"retract_restart_extra": [
"0"
],
"retract_restart_extra_toolchange": [
"0"
],
"retract_when_changing_layer": [
"1"
],
"retraction_distances_when_cut": [
"18"
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"retraction_length": [
"0.8"
],
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"1"
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"30"
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"3"
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"wipe": [
"1"
],
"wipe_distance": [
"1"
],
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"0"
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"Normal Lift"
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"gcode_remap_y": "pos_z",
"gcode_remap_z": "pos_y",
"printer_extruder_id": [
"1"
],
"belt_printer": "1",
"belt_slice_rotation": "x",
"belt_slice_rotation_angle": "45",
"build_plate_tilt_x": "45",
"purge_in_prime_tower": "0",
"scan_first_layer": "0",
"auxiliary_fan": "0"
}
@@ -1,140 +0,0 @@
{
"type": "machine",
"name": "fdm_klipper_common",
"inherits": "fdm_machine_common",
"from": "system",
"instantiation": "false",
"gcode_flavor": "klipper",
"machine_max_acceleration_e": [
"5000",
"5000"
],
"machine_max_acceleration_extruding": [
"20000",
"20000"
],
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"5000",
"5000"
],
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"20000",
"20000"
],
"machine_max_acceleration_x": [
"20000",
"20000"
],
"machine_max_acceleration_y": [
"20000",
"20000"
],
"machine_max_acceleration_z": [
"500",
"200"
],
"machine_max_speed_e": [
"25",
"25"
],
"machine_max_speed_x": [
"500",
"200"
],
"machine_max_speed_y": [
"500",
"200"
],
"machine_max_speed_z": [
"12",
"12"
],
"machine_max_jerk_e": [
"2.5",
"2.5"
],
"machine_max_jerk_x": [
"9",
"9"
],
"machine_max_jerk_y": [
"9",
"9"
],
"machine_max_jerk_z": [
"0.2",
"0.4"
],
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"0",
"0"
],
"machine_min_travel_rate": [
"0",
"0"
],
"max_layer_height": [
"0.32"
],
"min_layer_height": [
"0.08"
],
"printable_height": "250",
"extruder_clearance_radius": "65",
"extruder_clearance_height_to_rod": "36",
"extruder_clearance_height_to_lid": "140",
"printer_settings_id": "",
"printer_technology": "FFF",
"printer_variant": "0.4",
"retraction_minimum_travel": [
"1"
],
"retract_before_wipe": [
"70%"
],
"retract_when_changing_layer": [
"1"
],
"retraction_length": [
"0.8"
],
"retract_length_toolchange": [
"2"
],
"z_hop": [
"0.4"
],
"retract_restart_extra": [
"0"
],
"retract_restart_extra_toolchange": [
"0"
],
"retraction_speed": [
"30"
],
"deretraction_speed": [
"30"
],
"z_hop_types": "Normal Lift",
"single_extruder_multi_material": "1",
"change_filament_gcode": "",
"wipe": [
"1"
],
"default_filament_profile": [
"Generic PLA @System"
],
"default_print_profile": "0.20mm Standard @MyKlipper",
"bed_exclude_area": [
"0x0"
],
"machine_start_gcode": "M190 S[bed_temperature_initial_layer_single]\nM109 S[nozzle_temperature_initial_layer]\nPRINT_START EXTRUDER=[nozzle_temperature_initial_layer] BED=[bed_temperature_initial_layer_single]\n",
"machine_end_gcode": "PRINT_END",
"layer_change_gcode": ";AFTER_LAYER_CHANGE\n;[layer_z]",
"before_layer_change_gcode": ";BEFORE_LAYER_CHANGE\n;[layer_z]\nG92 E0\n",
"machine_pause_gcode": "PAUSE",
"scan_first_layer": "0",
"nozzle_type": "undefine",
"auxiliary_fan": "0"
}
@@ -1,118 +0,0 @@
{
"type": "machine",
"name": "fdm_machine_common",
"from": "system",
"instantiation": "false",
"printer_technology": "FFF",
"deretraction_speed": [
"40"
],
"extruder_colour": [
"#FCE94F"
],
"extruder_offset": [
"0x0"
],
"gcode_flavor": "marlin",
"machine_max_acceleration_e": [
"5000"
],
"machine_max_acceleration_extruding": [
"10000"
],
"machine_max_acceleration_retracting": [
"1000"
],
"machine_max_acceleration_x": [
"10000"
],
"machine_max_acceleration_y": [
"10000"
],
"machine_max_acceleration_z": [
"500"
],
"machine_max_speed_e": [
"60"
],
"machine_max_speed_x": [
"500"
],
"machine_max_speed_y": [
"500"
],
"machine_max_speed_z": [
"10"
],
"machine_max_jerk_e": [
"5"
],
"machine_max_jerk_x": [
"8"
],
"machine_max_jerk_y": [
"8"
],
"machine_max_jerk_z": [
"0.4"
],
"machine_min_extruding_rate": [
"0"
],
"machine_min_travel_rate": [
"0"
],
"max_layer_height": [
"0.32"
],
"min_layer_height": [
"0.08"
],
"printable_height": "250",
"extruder_clearance_radius": "65",
"extruder_clearance_height_to_rod": "36",
"extruder_clearance_height_to_lid": "140",
"nozzle_diameter": [
"0.4"
],
"printer_settings_id": "",
"printer_variant": "0.4",
"retraction_minimum_travel": [
"2"
],
"retract_before_wipe": [
"70%"
],
"retract_when_changing_layer": [
"1"
],
"retraction_length": [
"1"
],
"retract_length_toolchange": [
"1"
],
"z_hop": [
"0"
],
"retract_restart_extra": [
"0"
],
"retract_restart_extra_toolchange": [
"0"
],
"retraction_speed": [
"60"
],
"single_extruder_multi_material": "1",
"change_filament_gcode": "",
"wipe": [
"1"
],
"default_print_profile": "",
"machine_start_gcode": "G0 Z20 F9000\nG92 E0; G1 E-10 F1200\nG28\nM970 Q1 A10 B10 C130 K0\nM970 Q1 A10 B131 C250 K1\nM974 Q1 S1 P0\nM970 Q0 A10 B10 C130 H20 K0\nM970 Q0 A10 B131 C250 K1\nM974 Q0 S1 P0\nM220 S100 ;Reset Feedrate\nM221 S100 ;Reset Flowrate\nG29 ;Home\nG90;\nG92 E0 ;Reset Extruder \nG1 Z2.0 F3000 ;Move Z Axis up \nG1 X10.1 Y20 Z0.28 F5000.0 ;Move to start position\nM109 S205;\nG1 X10.1 Y200.0 Z0.28 F1500.0 E15 ;Draw the first line\nG1 X10.4 Y200.0 Z0.28 F5000.0 ;Move to side a little\nG1 X10.4 Y20 Z0.28 F1500.0 E30 ;Draw the second line\nG92 E0 ;Reset Extruder \nG1 X110 Y110 Z2.0 F3000 ;Move Z Axis up",
"machine_end_gcode": "M400 ; wait for buffer to clear\nG92 E0 ; zero the extruder\nG1 E-4.0 F3600; retract \nG91\nG1 Z3;\nM104 S0 ; turn off hotend\nM140 S0 ; turn off bed\nM106 S0 ; turn off fan\nG90 \nG0 X110 Y200 F3600 \nprint_end",
"layer_change_gcode": ";AFTER_LAYER_CHANGE\n;[layer_z]",
"before_layer_change_gcode": ";BEFORE_LAYER_CHANGE\n;[layer_z]\nG92 E0\n",
"machine_pause_gcode": "M601"
}
@@ -1,23 +0,0 @@
{
"type": "process",
"name": "0.20mm Standard @BabyBelt Pro",
"inherits": "fdm_process_common",
"from": "system",
"setting_id": "JGfGtqX6CWjCt437",
"instantiation": "true",
"layer_height": "0.2",
"initial_layer_print_height": "0.2",
"initial_layer_line_width": "0.42",
"wall_loops": "2",
"reduce_infill_retraction": "1",
"detect_overhang_wall": "1",
"skirt_loops": "0",
"skirt_distance": "0",
"sparse_infill_pattern": "grid",
"sparse_infill_speed": "200",
"support_base_pattern": "rectilinear",
"support_interface_pattern": "rectilinear",
"compatible_printers": [
"BabyBelt Pro 0.4 nozzle"
]
}
@@ -1,106 +0,0 @@
{
"type": "process",
"name": "fdm_process_common",
"from": "system",
"instantiation": "false",
"reduce_crossing_wall": "0",
"max_travel_detour_distance": "0",
"bottom_surface_pattern": "monotonic",
"bottom_shell_thickness": "0",
"bridge_speed": "50",
"brim_width": "5",
"brim_object_gap": "0.1",
"compatible_printers": [],
"compatible_printers_condition": "",
"print_sequence": "by layer",
"default_acceleration": "1000",
"initial_layer_acceleration": "500",
"top_surface_acceleration": "1000",
"travel_acceleration": "1000",
"inner_wall_acceleration": "1000",
"outer_wall_acceleration": "700",
"bridge_no_support": "0",
"draft_shield": "disabled",
"elefant_foot_compensation": "0",
"enable_arc_fitting": "0",
"wall_infill_order": "inner wall/outer wall/infill",
"infill_direction": "45",
"sparse_infill_density": "15%",
"sparse_infill_pattern": "crosshatch",
"initial_layer_print_height": "0.2",
"infill_combination": "0",
"infill_wall_overlap": "25%",
"interface_shells": "0",
"ironing_flow": "10%",
"ironing_spacing": "0.15",
"ironing_speed": "30",
"ironing_type": "no ironing",
"reduce_infill_retraction": "1",
"filename_format": "{input_filename_base}_{layer_height}mm_{filament_type[initial_tool]}_{printer_model}_{print_time}.gcode",
"detect_overhang_wall": "1",
"slowdown_for_curled_perimeters": "1",
"overhang_1_4_speed": "0",
"overhang_2_4_speed": "50",
"overhang_3_4_speed": "30",
"overhang_4_4_speed": "10",
"line_width": "110%",
"inner_wall_line_width": "110%",
"outer_wall_line_width": "100%",
"top_surface_line_width": "93.75%",
"sparse_infill_line_width": "110%",
"initial_layer_line_width": "120%",
"internal_solid_infill_line_width": "120%",
"support_line_width": "96%",
"wall_loops": "3",
"print_settings_id": "",
"raft_layers": "0",
"seam_position": "aligned",
"skirt_distance": "2",
"skirt_height": "3",
"min_skirt_length": "4",
"skirt_loops": "0",
"minimum_sparse_infill_area": "15",
"spiral_mode": "0",
"standby_temperature_delta": "-5",
"enable_support": "0",
"resolution": "0.012",
"support_type": "normal(auto)",
"support_on_build_plate_only": "0",
"support_top_z_distance": "0.2",
"support_bottom_z_distance": "0.2",
"support_filament": "0",
"support_interface_loop_pattern": "0",
"support_interface_filament": "0",
"support_interface_top_layers": "2",
"support_interface_bottom_layers": "2",
"support_interface_spacing": "0.5",
"support_interface_speed": "80",
"support_base_pattern": "default",
"support_base_pattern_spacing": "2.5",
"support_speed": "150",
"support_threshold_angle": "30",
"support_object_xy_distance": "0.35",
"tree_support_branch_angle": "30",
"tree_support_wall_count": "0",
"detect_thin_wall": "0",
"top_surface_pattern": "monotonicline",
"top_shell_thickness": "0.8",
"enable_prime_tower": "1",
"wipe_tower_no_sparse_layers": "0",
"prime_tower_width": "60",
"xy_hole_compensation": "0",
"xy_contour_compensation": "0",
"layer_height": "0.2",
"bottom_shell_layers": "3",
"top_shell_layers": "4",
"bridge_flow": "1",
"initial_layer_speed": "45",
"initial_layer_infill_speed": "45",
"outer_wall_speed": "45",
"inner_wall_speed": "80",
"sparse_infill_speed": "150",
"internal_solid_infill_speed": "150",
"top_surface_speed": "50",
"gap_infill_speed": "30",
"travel_speed": "200"
}
-1
View File
@@ -26,7 +26,6 @@ struct SlopeDetection
bool actived;
float normal_z;
mat3 volume_world_normal_matrix;
vec3 up_direction;
};
uniform vec4 uniform_color;
+2 -3
View File
@@ -23,7 +23,6 @@ struct SlopeDetection
bool actived;
float normal_z;
mat3 volume_world_normal_matrix;
vec3 up_direction;
};
uniform mat4 view_model_matrix;
@@ -78,8 +77,8 @@ void main()
// Point in homogenous coordinates.
world_pos = volume_world_matrix * vec4(v_position, 1.0);
// dot product of world normal with up direction, used for slope shading
world_normal_z = slope.actived ? dot(normalize(slope.volume_world_normal_matrix * v_normal), slope.up_direction) : 0.0;
// z component of normal vector in world coordinate used for slope shading
world_normal_z = slope.actived ? (normalize(slope.volume_world_normal_matrix * v_normal)).z : 0.0;
gl_Position = projection_matrix * position;
if (is_outline) {
+1 -2
View File
@@ -37,7 +37,6 @@ struct SlopeDetection
bool actived;
float normal_z;
mat3 volume_world_normal_matrix;
vec3 up_direction;
};
uniform SlopeDetection slope;
@@ -86,7 +85,7 @@ void main()
color = LightBlue;
alpha = 1.0;
}
else if( dot(transformed_normal, slope.up_direction) < slope.normal_z - EPSILON)
else if( transformed_normal.z < slope.normal_z - EPSILON)
{
color = color * 0.5 + LightRed * 0.5;
alpha = 1.0;
-1
View File
@@ -24,7 +24,6 @@ struct SlopeDetection
bool actived;
float normal_z;
mat3 volume_world_normal_matrix;
vec3 up_direction;
};
uniform SlopeDetection slope;
void main()
-1
View File
@@ -41,7 +41,6 @@ struct SlopeDetection
bool actived;
float normal_z;
mat3 volume_world_normal_matrix;
vec3 up_direction;
};
uniform vec4 uniform_color;
+2 -3
View File
@@ -7,7 +7,6 @@ struct SlopeDetection
bool actived;
float normal_z;
mat3 volume_world_normal_matrix;
vec3 up_direction;
};
uniform mat4 view_model_matrix;
@@ -47,8 +46,8 @@ void main()
// Point in homogenous coordinates.
world_pos = volume_world_matrix * vec4(v_position, 1.0);
// dot product of world normal with up direction, used for slope shading
world_normal_z = slope.actived ? dot(normalize(slope.volume_world_normal_matrix * v_normal), slope.up_direction) : 0.0;
// z component of normal vector in world coordinate used for slope shading
world_normal_z = slope.actived ? (normalize(slope.volume_world_normal_matrix * v_normal)).z : 0.0;
gl_Position = projection_matrix * position;
if (is_outline) {
-1
View File
@@ -29,7 +29,6 @@ struct SlopeDetection
bool actived;
float normal_z;
mat3 volume_world_normal_matrix;
vec3 up_direction;
};
uniform vec4 uniform_color;
+2 -3
View File
@@ -23,7 +23,6 @@ struct SlopeDetection
bool actived;
float normal_z;
mat3 volume_world_normal_matrix;
vec3 up_direction;
};
uniform mat4 view_model_matrix;
@@ -78,8 +77,8 @@ void main()
// Point in homogenous coordinates.
world_pos = volume_world_matrix * vec4(v_position, 1.0);
// dot product of world normal with up direction, used for slope shading
world_normal_z = slope.actived ? dot(normalize(slope.volume_world_normal_matrix * v_normal), slope.up_direction) : 0.0;
// z component of normal vector in world coordinate used for slope shading
world_normal_z = slope.actived ? (normalize(slope.volume_world_normal_matrix * v_normal)).z : 0.0;
gl_Position = projection_matrix * position;
if (is_outline) {
+1 -2
View File
@@ -37,7 +37,6 @@ struct SlopeDetection
bool actived;
float normal_z;
mat3 volume_world_normal_matrix;
vec3 up_direction;
};
uniform SlopeDetection slope;
@@ -88,7 +87,7 @@ void main()
color = LightBlue;
alpha = 1.0;
}
else if( dot(transformed_normal, slope.up_direction) < slope.normal_z - EPSILON)
else if( transformed_normal.z < slope.normal_z - EPSILON)
{
color = color * 0.5 + LightRed * 0.5;
alpha = 1.0;
-1
View File
@@ -24,7 +24,6 @@ struct SlopeDetection
bool actived;
float normal_z;
mat3 volume_world_normal_matrix;
vec3 up_direction;
};
uniform SlopeDetection slope;
void main()
-1
View File
@@ -44,7 +44,6 @@ struct SlopeDetection
bool actived;
float normal_z;
mat3 volume_world_normal_matrix;
vec3 up_direction;
};
uniform vec4 uniform_color;
+2 -3
View File
@@ -7,7 +7,6 @@ struct SlopeDetection
bool actived;
float normal_z;
mat3 volume_world_normal_matrix;
vec3 up_direction;
};
uniform mat4 view_model_matrix;
@@ -47,8 +46,8 @@ void main()
// Point in homogenous coordinates.
world_pos = volume_world_matrix * vec4(v_position, 1.0);
// dot product of world normal with up direction, used for slope shading
world_normal_z = slope.actived ? dot(normalize(slope.volume_world_normal_matrix * v_normal), slope.up_direction) : 0.0;
// z component of normal vector in world coordinate used for slope shading
world_normal_z = slope.actived ? (normalize(slope.volume_world_normal_matrix * v_normal)).z : 0.0;
gl_Position = projection_matrix * position;
if (is_outline) {
-5
View File
@@ -167,11 +167,6 @@ OBSOLETE_KEYS = {
"filament_load_time", "filament_unload_time", "smooth_coefficient",
"overhang_totally_speed", "silent_mode", "overhang_speed_classic",
"anisotropic_surfaces",
# Belt printer options retired before the feature shipped (#16236).
"belt_slice_rotation_global", "preslice_remap_x", "preslice_remap_y", "preslice_remap_z",
"preslice_remap_global", "belt_support_z_offset_mode", "first_layer_plane",
"first_layer_plane_offset", "belt_preslice_global", "gcode_back_transform",
"belt_support_floor_mode", "first_layer_plane_thickness",
}
# Keys renamed at some point, whose old and new spellings must never co-exist:
+1 -7
View File
@@ -91,12 +91,6 @@ if (SLIC3R_GUI)
# list(REMOVE_ITEM wxWidgets_LIBRARIES oleacc)
find_package(wxInspector REQUIRED)
# wxInspector 1.0.0 installs its headers but accidentally declares the
# INSTALL_INTERFACE include directory PRIVATE, so its imported target does
# not expose them to consumers. Restore the package prefix include path until
# the upstream export is fixed.
get_filename_component(WXINSPECTOR_PREFIX "${wxInspector_DIR}/../../.." ABSOLUTE)
target_include_directories(wxInspector::wxInspector INTERFACE "${WXINSPECTOR_PREFIX}/include")
# wxInspector's exported interface names the release wxWidgets import
# libraries, which a Debug build cannot link. wx is linked above instead.
@@ -192,7 +186,7 @@ endif ()
# Add the Slic3r GUI library, libcurl, OpenGL and GLU libraries.
if (SLIC3R_GUI)
# target_link_libraries(OrcaSlicer ws2_32 uxtheme setupapi libslic3r_gui ${wxWidgets_LIBRARIES})
target_link_libraries(OrcaSlicer libslic3r_gui wxInspector::wxInspector)
target_link_libraries(OrcaSlicer libslic3r_gui)
if (MSVC)
# Generate debug symbols even in release mode.
target_link_options(OrcaSlicer PUBLIC "$<$<CONFIG:RELEASE>:/DEBUG>")
+13 -48
View File
@@ -3432,14 +3432,9 @@ int CLI::run(int argc, char **argv)
max_self_index = std::max(max_self_index, v);
min_self_index = std::min(min_self_index, v);
}
// And a project saved with FEWER filaments than are now loaded (a
// one-filament project sliced with two --load-filaments) leaves the tables half filled:
// the variant matching below then reads past filament_extruder_variant and
// set_with_restore_2 throws an uncaught size error. Regenerate in that case too.
if (max_self_index > filament_count || min_self_index < 1 || max_self_index < filament_count
|| (int) filament_self_index_opt->values.size() < filament_count) {
BOOST_LOG_TRIVIAL(warning) << boost::format("filament_self_index range [%1%, %2%] (size %4%) is invalid for filament_count %3%, regenerating")
% min_self_index % max_self_index % filament_count % filament_self_index_opt->values.size();
if (max_self_index > filament_count || min_self_index < 1) {
BOOST_LOG_TRIVIAL(warning) << boost::format("filament_self_index range [%1%, %2%] is invalid for filament_count %3%, regenerating")
% min_self_index % max_self_index % filament_count;
need_regenerate_self_index = true;
}
}
@@ -3530,10 +3525,6 @@ int CLI::run(int argc, char **argv)
std::vector<std::string>& filament_variants = curr_variant_opt->values;
filament_variants.resize(filament_count, get_extruder_variant_string(etDirectDrive, nvtStandard));
}
// See the filament_self_index note above: one variant per filament for
// the filaments the project did not know about.
if ((int) curr_variant_opt->values.size() < filament_count)
curr_variant_opt->values.resize(filament_count, get_extruder_variant_string(etDirectDrive, nvtStandard));
const ConfigOptionStrings *new_variant_opt = dynamic_cast<const ConfigOptionStrings*>(config.option("filament_extruder_variant", true));
std::vector<int> new_variant_indice;
@@ -3542,7 +3533,7 @@ int CLI::run(int argc, char **argv)
for (int i = 0; i < new_variant_count; i++)
{
for (int j = old_start_indice[filament_index - 1]; j < old_start_indice[filament_index - 1] + old_variant_count && j < (int) curr_variant_opt->values.size(); j++)
for (int j = old_start_indice[filament_index - 1]; j < old_start_indice[filament_index - 1] + old_variant_count; j++)
{
if (curr_variant_opt->values[j] == new_variant_opt->values[i]) {
new_variant_indice[i] = j;
@@ -3594,18 +3585,7 @@ int CLI::run(int argc, char **argv)
ConfigOptionVectorBase* opt_vec_dst = static_cast<ConfigOptionVectorBase*>(opt);
const ConfigOptionVectorBase* opt_vec_src = static_cast<const ConfigOptionVectorBase*>(source_opt);
//set with index
try {
// A project with fewer filaments than are loaded: grow the
// destination to the filament's slot first (set_with_restore_2 only restores).
if (opt_vec_src->size() > 0 && opt_vec_dst->size() < size_t(old_start_indice[filament_index - 1] + old_variant_count))
opt_vec_dst->resize(size_t(old_start_indice[filament_index - 1] + old_variant_count), opt_vec_src);
opt_vec_dst->set_with_restore_2(opt_vec_src, new_variant_indice, old_start_indice[filament_index - 1], old_variant_count);
} catch (const std::exception &ex) { // Was an uncaught abort
BOOST_LOG_TRIVIAL(error) << boost::format("filament %1%: option %2% could not be applied: %3%") % filament_index % opt_key % ex.what();
boost::nowide::cerr << "filament " << filament_index << ": option " << opt_key << " could not be applied: " << ex.what() << std::endl;
record_exit_reson(outfile_dir, CLI_CONFIG_FILE_ERROR, 0, cli_errors[CLI_CONFIG_FILE_ERROR], sliced_info);
flush_and_exit(CLI_CONFIG_FILE_ERROR);
}
opt_vec_dst->set_with_restore_2(opt_vec_src, new_variant_indice, old_start_indice[filament_index - 1], old_variant_count);
}
continue;
@@ -3654,16 +3634,7 @@ int CLI::run(int argc, char **argv)
if (filament_options_with_variant.find(opt_key) != filament_options_with_variant.end()) {
std::vector<int> temp_variant_indice;
temp_variant_indice.resize(new_variant_count, -1);
try {
if (opt_vec_src->size() > 0 && opt_vec_dst->size() < size_t(old_start_indice[filament_index - 1] + old_variant_count)) // See above
opt_vec_dst->resize(size_t(old_start_indice[filament_index - 1] + old_variant_count), opt_vec_src);
opt_vec_dst->set_with_restore_2(opt_vec_src, temp_variant_indice, old_start_indice[filament_index - 1], old_variant_count, true);
} catch (const std::exception &ex) { // Was an uncaught abort
BOOST_LOG_TRIVIAL(error) << boost::format("filament %1%: option %2% could not be applied: %3%") % filament_index % opt_key % ex.what();
boost::nowide::cerr << "filament " << filament_index << ": option " << opt_key << " could not be applied: " << ex.what() << std::endl;
record_exit_reson(outfile_dir, CLI_CONFIG_FILE_ERROR, 0, cli_errors[CLI_CONFIG_FILE_ERROR], sliced_info);
flush_and_exit(CLI_CONFIG_FILE_ERROR);
}
opt_vec_dst->set_with_restore_2(opt_vec_src, temp_variant_indice, old_start_indice[filament_index - 1], old_variant_count, true);
if (opt_key == "filament_extruder_variant")
new_variant_counts[filament_index - 1] = opt_vec_src->size();
@@ -4123,8 +4094,6 @@ int CLI::run(int argc, char **argv)
flush_and_exit(CLI_MIXED_FILAMENT_INVALID);
}
}
if (filament_count > 0)
resize_mixed_filament_metadata(m_print_config, size_t(filament_count), size_t(filament_count));
m_print_config.option<ConfigOptionEnum<PrinterTechnology>>("printer_technology", true)->value = printer_technology;
@@ -4179,10 +4148,6 @@ int CLI::run(int argc, char **argv)
BOOST_LOG_TRIVIAL(info) << boost::format("%1%, set disable_wipe_tower_after_mapping back to false due to wrapping detect")%__LINE__;
}
// Belt printers never get the classic wipe tower (see Print::has_wipe_tower()), so reserve no space for it.
const ConfigOptionBool* belt_printer_opt = m_print_config.option<ConfigOptionBool>("belt_printer");
const bool is_belt_printer = belt_printer_opt && belt_printer_opt->value;
auto timelapse_type_opt = m_print_config.option("timelapse_type");
bool is_smooth_timelapse = false;
if (enable_timelapse && timelapse_type_opt && (timelapse_type_opt->getInt() == TimelapseType::tlSmooth))
@@ -4420,11 +4385,11 @@ int CLI::run(int argc, char **argv)
}
};
auto check_plate_wipe_tower = [get_print_sequence, is_smooth_timelapse, is_belt_printer](Slic3r::GUI::PartPlate* plate, int plate_index, DynamicPrintConfig& print_config, plate_obj_size_info_t &plate_obj_size_info) {
auto check_plate_wipe_tower = [get_print_sequence, is_smooth_timelapse](Slic3r::GUI::PartPlate* plate, int plate_index, DynamicPrintConfig& print_config, plate_obj_size_info_t &plate_obj_size_info) {
plate_obj_size_info.obj_bbox= plate->get_objects_bounding_box();
BOOST_LOG_TRIVIAL(info) << boost::format("plate %1%, object bbox: min {%2%, %3%, %4%} - max {%5%, %6%, %7%}")
%(plate_index+1) %plate_obj_size_info.obj_bbox.min.x() % plate_obj_size_info.obj_bbox.min.y() % plate_obj_size_info.obj_bbox.min.z() %plate_obj_size_info.obj_bbox.max.x() % plate_obj_size_info.obj_bbox.max.y() % plate_obj_size_info.obj_bbox.max.z();
if (is_belt_printer || !print_config.has("wipe_tower_x")) {
if (!print_config.has("wipe_tower_x")) {
plate_obj_size_info.has_wipe_tower = false;
BOOST_LOG_TRIVIAL(info) << boost::format("can not found wipe_tower_x in config, set to no wipe tower");
return;
@@ -5294,7 +5259,7 @@ int CLI::run(int argc, char **argv)
}
}
if (!is_belt_printer && ((!arrange_cfg.is_seq_print && (assemble_plate.filaments_count > 1)) || (enable_wrapping_detect && !current_wrapping_exclude_area.empty())))
if ((!arrange_cfg.is_seq_print && (assemble_plate.filaments_count > 1))||(enable_wrapping_detect && !current_wrapping_exclude_area.empty()))
{
//prepare the wipe tower
int plate_count = partplate_list.get_plate_count();
@@ -5446,7 +5411,7 @@ int CLI::run(int argc, char **argv)
bool is_seq_print = false;
get_print_sequence(cur_plate, m_print_config, is_seq_print);
if (!is_belt_printer && !is_seq_print && (assemble_plate.filaments_count > 1) && !has_wipe_tower_position)
if (!is_seq_print && (assemble_plate.filaments_count > 1) && !has_wipe_tower_position)
{
//prepare the wipe tower
auto printer_structure_opt = m_print_config.option<ConfigOptionEnum<PrinterStructure>>("printer_structure");
@@ -5614,7 +5579,7 @@ int CLI::run(int argc, char **argv)
};
const int max_filament_count = plate_count > 0 ? *std::max_element(plate_filament_counts.begin(), plate_filament_counts.end()) : 0;
if (!is_belt_printer && plate_needs_wipe_tower(max_filament_count))
if (plate_needs_wipe_tower(max_filament_count))
{
//prepare the wipe tower
auto printer_structure_opt = m_print_config.option<ConfigOptionEnum<PrinterStructure>>("printer_structure");
@@ -5721,7 +5686,7 @@ int CLI::run(int argc, char **argv)
BOOST_LOG_TRIVIAL(info) << __FUNCTION__ << boost::format(": found single object mode");
}
if (!is_belt_printer && m_print_config.has("wipe_tower_x") && (is_smooth_timelapse || !arrange_cfg.is_seq_print || (selected.size() <= 1))) {
if (m_print_config.has("wipe_tower_x") && (is_smooth_timelapse || !arrange_cfg.is_seq_print || (selected.size() <= 1))) {
float x;
float y;
if (duplicate_count > 0) {
@@ -6346,7 +6311,7 @@ int CLI::run(int argc, char **argv)
// The stored (or default) tower position may not fit the tower these plates
// need, and no CLI placement site runs on a plain slice - mirror the GUI's
// reload clamp and fit every plate's tower into the printable area first.
if (!is_belt_printer && m_print_config.option<ConfigOptionBool>("enable_prime_tower", true)->value) {
if (m_print_config.option<ConfigOptionBool>("enable_prime_tower", true)->value) {
for (int index = 0; index < partplate_list.get_plate_count(); index++) {
if ((plate_to_slice != 0) && (plate_to_slice != (index + 1)))
continue;
+11 -29
View File
@@ -202,7 +202,6 @@ Vec2d place_wipe_tower(DynamicPrintConfig &cfg, const Vec2d &center)
std::string slice_two_color_cube_and_export(DynamicPrintConfig cfg, bool is_bbl, bool by_object)
{
const Vec2d center = printable_area_center(cfg);
const bool belt = cfg.opt_bool("belt_printer");
std::vector<Vec2d> cube_mins;
if (by_object) {
// By-object printing fires the hook only without a wipe tower, and rules out clumping detection and
@@ -213,12 +212,6 @@ std::string slice_two_color_cube_and_export(DynamicPrintConfig cfg, bool is_bbl,
cfg.set_key_value("timelapse_type", new ConfigOptionEnum<TimelapseType>(tlTraditional));
cfg.set_key_value("skirt_loops", new ConfigOptionInt(0));
cube_mins = {center + Vec2d(-20., -5.), center + Vec2d(10., -5.)};
} else if (belt) {
// A belt object's slicing Z starts at the belt below its leading end, well below its first
// printed layer, so a height range in slicing Z does not map onto the part. Two cubes one
// behind the other along the belt, the second on filament 2, give the one filament change
// instead (the purge prism is an object the GUI adds, so there is no tower to place).
cube_mins = {center - Vec2d(5., 15.), center + Vec2d(-5., 5.)};
} else {
// Clumping detection changes the tower footprint, so turn it on before placing the tower.
if (!cfg.opt_string("wrapping_detection_gcode").empty())
@@ -236,20 +229,14 @@ std::string slice_two_color_cube_and_export(DynamicPrintConfig cfg, bool is_bbl,
obj->name = "cube"; // populates [input_filename_base] the way a loaded model does
obj->add_volume(m);
obj->add_instance();
if (belt && !by_object) {
// The second cube along the belt is on filament 2 (see cube_mins above).
if (&cube_min == &cube_mins.back())
obj->config.set_key_value("extruder", new ConfigOptionInt(2));
} else {
// Filament 2 is used only above z=4, so the upper layers carry a single filament change.
DynamicPrintConfig range_config;
range_config.set_key_value("extruder", new ConfigOptionInt(2));
// Every range must carry a layer_height; use the process's own so a fine nozzle (e.g. 0.15 mm
// printing ~0.1 mm layers) isn't forced to a height its extrusion width can't support - that
// trips Flow::with_spacing.
range_config.set_key_value("layer_height", new ConfigOptionFloat(cfg.opt_float("layer_height")));
obj->layer_config_ranges[{4.0, 10.0}].assign_config(std::move(range_config));
}
// Filament 2 is used only above z=4, so the upper layers carry a single filament change.
DynamicPrintConfig range_config;
range_config.set_key_value("extruder", new ConfigOptionInt(2));
// Every range must carry a layer_height; use the process's own so a fine nozzle (e.g. 0.15 mm
// printing ~0.1 mm layers) isn't forced to a height its extrusion width can't support - that
// trips Flow::with_spacing.
range_config.set_key_value("layer_height", new ConfigOptionFloat(cfg.opt_float("layer_height")));
obj->layer_config_ranges[{4.0, 10.0}].assign_config(std::move(range_config));
obj->ensure_on_bed();
print.auto_assign_extruders(obj);
}
@@ -534,16 +521,11 @@ int slice_all_printers(const std::string &vendor, const std::string &outdir)
const std::string filament_name = bundle.filaments.get_selected_preset_name();
const std::string what = "Printer \"" + printer + "\"";
const std::string file_base = sanitize_filename(vendor_name) + "__" + sanitize_filename(printer);
// A belt printer has no wipe tower (it purges into a prism object on the belt), so its
// filament change is the plain tool change set_extruder() emits rather than the tower's block.
const bool belt = bundle.printers.get_selected_preset().config.opt_bool("belt_printer");
const std::string marker = belt ? "\nT1\n" : "CP TOOLCHANGE START";
if (const std::string out = slice_selection(bundle, what, false, outdir, file_base); out.empty())
++failures;
else if (out.find(marker) == std::string::npos) {
// The filament change never fired, so change_filament_gcode was not exercised.
BOOST_LOG_TRIVIAL(error) << what << " sliced but the filament change never fired (no "
<< (belt ? "T1" : "CP TOOLCHANGE START") << ")";
else if (out.find("CP TOOLCHANGE START") == std::string::npos) {
// The filament change never rode the tower, so change_filament_gcode was not exercised.
BOOST_LOG_TRIVIAL(error) << what << " sliced but the filament change never fired (no CP TOOLCHANGE START)";
++failures;
}
cover(bundle.prints.get_selected_preset());
+9 -84
View File
@@ -299,15 +299,7 @@ Points get_shrink_bedpts(const DynamicPrintConfig* print_cfg, const ArrangeParam
template<class PConf>
void fill_config(PConf& pcfg, const ArrangeParams &params) {
if (params.is_belt) {
// Pack from the end of the belt that prints first, and keep the pile on the
// bed when it is larger than the room around that end.
pcfg.starting_point = !params.belt_reversed ? PConf::Alignment::BOTTOM_LEFT :
params.belt_axis == 1 ? PConf::Alignment::TOP_LEFT :
PConf::Alignment::BOTTOM_RIGHT;
pcfg.clamp_to_bin = true;
}
else if (params.is_seq_print) {
if (params.is_seq_print) {
// Start placing the items from the center of the print bed
pcfg.starting_point = PConf::Alignment::BOTTOM_LEFT;
}
@@ -452,50 +444,6 @@ protected:
return bindist;
}
// Belt printers pack from the end of the belt that prints first, and a corner
// packer's checks (pile inside the bin, pack origin) apply to them as well.
bool corner_packing() const { return params.is_belt || m_pconf.starting_point == PConfig::Alignment::BOTTOM_LEFT; }
static double at(const Box::PointType &pt, int i) { return double(i == 0 ? getX(pt) : getY(pt)); }
// Position along the belt in print order: increasing from the end that prints first.
double belt_pos(const Box::PointType &pt) const { return params.belt_reversed ? -at(pt, params.belt_axis) : at(pt, params.belt_axis); }
double belt_start(const Box &bb) const { return belt_pos(params.belt_reversed ? bb.maxCorner() : bb.minCorner()); }
double belt_end(const Box &bb) const { return belt_pos(params.belt_reversed ? bb.minCorner() : bb.maxCorner()); }
// The corner of the bin the belt pile grows from.
Box::PointType belt_origin() const
{
const Box bb = sl::boundingBox(m_bin);
auto o = bb.minCorner();
if (params.belt_reversed) {
if (params.belt_axis == 0) setX(o, getX(bb.maxCorner()));
else setY(o, getY(bb.maxCorner()));
}
return o;
}
// An item's far edge in print order is what it costs (so a row fills across the
// belt before the pile advances), with a slight pull toward the near lateral
// edge and the same penalty as the bottom-left heuristic for sitting outside
// the corner.
double dist_along_belt(const Box &ibb)
{
const Box bin = sl::boundingBox(m_bin);
const int l = 1 - params.belt_axis;
const double lat = at(ibb.minCorner(), l) - at(bin.minCorner(), l);
double d = belt_end(ibb) - belt_start(bin);
d += lat < 0 ? 10 * -lat : 0.1 * lat;
if (double behind = belt_start(ibb) - belt_start(bin); behind < 0)
d += 10 * -behind;
return norm(d);
}
double corner_bindist(const Box &ibb, const Slic3r::Point &origin_pack)
{
return params.is_belt ? dist_along_belt(ibb) : dist_for_BOTTOM_LEFT(ibb, origin_pack);
}
double dist_to_bin(const Box& ibb, const Slic3r::Point& origin_pack, typename Packer::PlacementConfig::Alignment starting_point_alignment)
{
double bindist = 0;
@@ -585,8 +533,8 @@ protected:
// The smalles distance from the arranged pile center:
double dist = norm(*(std::min_element(dists.begin(), dists.end())));
if (corner_packing()) {
double bindist = corner_bindist(ibb, origin_pack);
if (m_pconf.starting_point == PConfig::Alignment::BOTTOM_LEFT) {
double bindist = dist_for_BOTTOM_LEFT(ibb, origin_pack);
score = 0.2 * dist + 0.8 * bindist;
}
else {
@@ -643,8 +591,8 @@ protected:
break;
}
case LAST_BIG_ITEM: {
if (corner_packing()) {
score = corner_bindist(ibb, origin_pack);
if (m_pconf.starting_point == PConfig::Alignment::BOTTOM_LEFT) {
score = dist_for_BOTTOM_LEFT(ibb, origin_pack);
}
else {
if (m_pilebb.defined)
@@ -659,8 +607,8 @@ protected:
// already processed bigger items.
// No need to play around with the anchor points, the center will be
// just fine for small items
if (corner_packing())
score = corner_bindist(ibb, origin_pack);
if (m_pconf.starting_point == PConfig::Alignment::BOTTOM_LEFT)
score = dist_for_BOTTOM_LEFT(ibb, origin_pack);
else {
// Align mainly around existing items
score = 0.8 * norm(pl::distance(ibb.center(), bigbb.center()))+ 0.2*norm(pl::distance(ibb.center(), origin_pack));
@@ -761,28 +709,6 @@ protected:
score += 1 * (new_extruder_cnt-last_extruder_cnt);
}
// On a belt the parts print in belt order, so every colour change between
// parts is a filament change. Items arrive sorted by extruder and the pile
// grows from the leading end; keep each colour's run contiguous by charging
// an item for every packed item of another colour it does not fully follow,
// counting the tilted layers that reach belt_tilt_slope * height past that
// item's far edge.
if (params.is_belt && !params.is_seq_print) {
const std::set<int> item_colours(item.extrude_ids.begin(), item.extrude_ids.end());
const double item_start = belt_start(ibb);
for (Item &p : m_items) {
if (p.is_virt_object)
continue;
const std::set<int> p_colours(p.extrude_ids.begin(), p.extrude_ids.end());
const bool same_colour = std::includes(item_colours.begin(), item_colours.end(), p_colours.begin(), p_colours.end())
|| std::includes(p_colours.begin(), p_colours.end(), item_colours.begin(), item_colours.end());
if (same_colour)
continue;
if (item_start < belt_end(p.boundingBox()) + scaled(p.height * params.belt_tilt_slope))
score += 10.;
}
}
return std::make_tuple(score, fullbb);
}
@@ -859,8 +785,7 @@ public:
auto binbb = sl::boundingBox(m_bin);
auto starting_point = this->params.is_belt ? belt_origin() :
cfg.starting_point == PConfig::Alignment::BOTTOM_LEFT ? binbb.minCorner() : binbb.center();
auto starting_point = cfg.starting_point == PConfig::Alignment::BOTTOM_LEFT ? binbb.minCorner() : binbb.center();
// if we have wipe tower, items should be arranged around wipe tower
for (Item itm : items) {
if (itm.is_wipe_tower) {
@@ -1011,7 +936,7 @@ std::function<double(const Item &, const ItemGroup&)> AutoArranger<ExPolygon>::g
auto mp = m_merged_pile;
mp.emplace_back(itm.transformedShape());
auto chull = sl::convexHull(mp);
if (corner_packing())
if (m_pconf.starting_point == PConfig::Alignment::BOTTOM_LEFT)
{
if (!sl::isInside(chull, m_bin))
score += LARGE_COST_TO_REJECT;
-7
View File
@@ -146,13 +146,6 @@ struct ArrangeParams {
float nozzle_height = 0;
float printable_height = 256.0;
Vec2d align_center{ 0.5,0.5 };
// Belt printer: items print in the order they lie along the belt axis, from
// its low end unless belt_reversed, and a part's top prints
// belt_tilt_slope * height further along it than its base.
bool is_belt = false;
int belt_axis = 1; // 0 = X, 1 = Y
bool belt_reversed = false;
float belt_tilt_slope = 1.f; // cot(belt tilt angle), 0 when the belt is not tilted
ArrangePolygons excluded_regions; // regions cant't be used
ArrangePolygons nonprefered_regions; // regions can be used but not prefered
-561
View File
@@ -1,561 +0,0 @@
#include <limits>
#include "BeltBrim.hpp"
#include "ClipperUtils.hpp"
#include "Flow.hpp"
#include "Layer.hpp"
#include "Polygon.hpp"
#include "Print.hpp"
#include "ShortestPath.hpp"
#include "Support/BeltFloorContext.hpp"
#include "BoundingBox.hpp"
#include "ExPolygon.hpp"
#include "ExtrusionEntity.hpp"
#include "ExtrusionEntityCollection.hpp"
#include "Point.hpp"
#include "Polyline.hpp"
#include "PrintConfig.hpp"
#include "libslic3r.h"
#include <algorithm>
#include <cmath>
#include <cstddef>
#include <cstdint>
#include <cstdlib>
#include <utility>
#include <vector>
namespace Slic3r {
// ---------------------------------------------------------------- scaling
static inline Point scale_u_point(const Point &p, int from_axis, double factor)
{
// llround, not a cast: casting truncates toward zero, so a round trip would
// walk every vertex toward the origin by up to one unit per pass.
return from_axis == 0 ?
Point(coord_t(std::llround(double(p.x()) * factor)), p.y()) :
Point(p.x(), coord_t(std::llround(double(p.y()) * factor)));
}
static inline void scale_u_polygon(Polygon &poly, int from_axis, double factor)
{
for (Point &p : poly.points)
p = scale_u_point(p, from_axis, factor);
}
ExPolygons belt_scale_u(const ExPolygons &src, const BeltBrimFrame &frame, double factor)
{
ExPolygons out = src;
for (ExPolygon &ex : out) {
scale_u_polygon(ex.contour, frame.from_axis, factor);
for (Polygon &hole : ex.holes)
scale_u_polygon(hole, frame.from_axis, factor);
}
return out;
}
Polylines belt_scale_u(const Polylines &src, const BeltBrimFrame &frame, double factor)
{
Polylines out = src;
for (Polyline &pl : out)
for (Point &p : pl.points)
p = scale_u_point(p, frame.from_axis, factor);
return out;
}
// ---------------------------------------------------------------- sweep
ExPolygons sweep_ex(const ExPolygons &src, const Point &t)
{
if (src.empty())
return {};
if (t == Point(0, 0))
return src;
// One parallelogram per boundary edge. Together with P and P + t these
// cover the Minkowski sum exactly: for any q = p + s*t with p in P and
// s in [0, 1], let s* be the smallest lambda >= 0 with q - lambda*t in P.
// Either s* == 0 (so q is in P) or q - s* * t lies on some boundary edge e,
// putting q in that edge's parallelogram. Hole edges must be included, or
// holes narrower than t along t would wrongly survive the sweep.
Polygons quads;
for (const ExPolygon &ex : src)
for (size_t c = 0; c < ex.num_contours(); ++ c)
for (const Line &e : ex.contour_or_hole(c).lines()) {
if (e.a == e.b)
continue;
Polygon q;
q.points = { e.a, e.b, e.b + t, e.a + t };
// The non-zero fill rule counts a clockwise ring as -1, which
// would punch a hole instead of adding material. Edges parallel
// to t give a zero-area quad; Clipper discards those harmlessly.
if (q.is_clockwise())
q.reverse();
quads.emplace_back(std::move(q));
}
ExPolygons shifted = src;
for (ExPolygon &ex : shifted)
ex.translate(t);
// union_ex(ExPolygons, Polygons) uses pftNonZero, which is the fill rule the
// argument above relies on.
return union_ex(union_ex(src, shifted), quads);
}
// ---------------------------------------------------------------- brim region
ExPolygons belt_brim_region(const ExPolygons &footprint_flat,
bool has_outer,
bool has_inner,
coord_t brim_width,
coord_t object_gap,
coord_t leading,
coord_t lateral,
const BeltBrimFrame &frame)
{
if (footprint_flat.empty() || (! has_outer && ! has_inner))
return {};
ExPolygons out;
if (has_outer) {
// Offset the outer ring from the contours only, so a hole cannot punch
// through it. Same reasoning as the plate brim in Brim.cpp.
Polygons contours;
contours.reserve(footprint_flat.size());
for (const ExPolygon &ex : footprint_flat)
contours.emplace_back(ex.contour);
// Inner and outer boundary offset from the same polygon, to avoid
// round-off mismatch between them.
ExPolygons inner = offset_ex(contours, float(object_gap), jtRound, SCALED_RESOLUTION);
// Close the interior before offsetting outwards. A belt contact patch is often a
// narrow, broken-up strip, and the offset rings of two islands less than
// 2 x brim_width apart merge and fill the space between them - space that lies
// UNDER the part, which is not what "outer brim" means. Closing also swallows
// holes in the patch for the same reason. Concavity-filling only, so an apron or
// any other outward protrusion is untouched.
ExPolygons envelope = brim_width > 0 ? closing_ex(inner, float(brim_width)) : inner;
ExPolygons base = envelope;
if (leading > 0) {
// Sweep downhill from the gapped keep-out, so the apron is contiguous with
// the ring instead of starting inside the gap.
const Point t = frame.from_axis == 0 ?
Point(frame.downhill_sign() * leading, 0) :
Point(0, frame.downhill_sign() * leading);
base = union_ex(base, sweep_ex(envelope, t));
}
if (lateral > 0) {
// Across the belt, both ways. Swept from `base` so the apron is widened
// too, and in the flattened frame the cross-belt axis is unscaled, so this
// distance is already a true on-belt distance.
const Point t = frame.from_axis == 0 ? Point(0, lateral) : Point(lateral, 0);
ExPolygons widened = union_ex(sweep_ex(base, t), sweep_ex(base, Point(-t.x(), -t.y())));
base = union_ex(base, to_polygons(widened));
}
ExPolygons outer = offset_ex(base, float(brim_width), jtRound, SCALED_RESOLUTION);
expolygons_append(out, diff_ex(outer, envelope));
}
if (has_inner) {
// Holes reversed so a negative offset grows inward, mirroring Brim.cpp.
// No apron here: an apron growing into a hole interior is never useful.
Polygons holes;
for (const ExPolygon &ex : footprint_flat)
polygons_append(holes, ex.holes);
polygons_reverse(holes);
if (! holes.empty()) {
ExPolygons hole_inner = offset_ex(holes, - float(brim_width + object_gap));
ExPolygons hole_outer = offset_ex(holes, - float(object_gap));
expolygons_append(out, intersection_ex(diff_ex(hole_outer, hole_inner), holes));
}
}
return union_ex(out);
}
// ---------------------------------------------------------------- line lattice
std::vector<coord_t> belt_brim_line_positions(coord_t u_lo,
coord_t u_hi,
coord_t pitch_u,
coord_t u_anchor)
{
std::vector<coord_t> out;
if (pitch_u <= 0 || u_hi <= u_lo)
return out;
// Walk the lattice from just below u_lo. Integer arithmetic throughout, so
// the half-open interval needs no epsilon: a point landing exactly on u_hi
// belongs to the next band.
int64_t k = int64_t(std::floor(double(u_lo - u_anchor) / double(pitch_u))) - 1;
while (u_anchor + coord_t(k) * pitch_u < u_lo)
++ k;
for (;; ++ k) {
const coord_t u = u_anchor + coord_t(k) * pitch_u;
if (u >= u_hi)
break;
out.emplace_back(u);
}
return out;
}
// ---------------------------------------------------------------- pipeline
// A band of the belt surface as an explicit box, clamped to `bounds` along the
// shear axis. Deliberately not BeltFloorContext::surface_polygon(): those
// half-planes span +-1000 mm, which is wasteful to clip against and dangerous to
// feed through the flattening scale.
static Polygon band_box(const BoundingBox &bounds, int from_axis, coordf_t u_lo, coordf_t u_hi)
{
coord_t lo = scale_(u_lo);
coord_t hi = scale_(u_hi);
const coord_t bmin = from_axis == 0 ? bounds.min.x() : bounds.min.y();
const coord_t bmax = from_axis == 0 ? bounds.max.x() : bounds.max.y();
lo = std::max(lo, bmin);
hi = std::min(hi, bmax);
Polygon poly;
if (hi <= lo)
return poly;
if (from_axis == 0)
poly.points = { Point(lo, bounds.min.y()), Point(hi, bounds.min.y()),
Point(hi, bounds.max.y()), Point(lo, bounds.max.y()) };
else
poly.points = { Point(bounds.min.x(), lo), Point(bounds.max.x(), lo),
Point(bounds.max.x(), hi), Point(bounds.min.x(), hi) };
return poly;
}
ExPolygons belt_brim_clip_leading_edge(const ExPolygons &region, const BeltBrimFrame &frame, coordf_t u_cut)
{
if (region.empty())
return region;
BoundingBox keep_bb = get_extents(region);
keep_bb.offset(scale_(1.));
const bool low_side = frame.downhill_sign() < 0; // downhill is -u
const Polygon keep = band_box(keep_bb, frame.from_axis,
low_side ? unscale<double>(frame.from_axis == 0 ? keep_bb.min.x() : keep_bb.min.y()) : u_cut,
low_side ? u_cut : unscale<double>(frame.from_axis == 0 ? keep_bb.max.x() : keep_bb.max.y()));
return keep.empty() ? ExPolygons{} : intersection_ex(region, Polygons{ keep });
}
// Everything the per-band line generator needs, gathered once per object.
struct BeltBrimContext
{
BeltFloorContext ctx;
BeltBrimFrame frame;
ExPolygons region; // brim region, object-local slicing XY
BoundingBox region_bbox;
Flow brim_flow;
coord_t pitch_u = 0;
coord_t u_anchor = 0;
double in_plane_pitch = 0.; // mm
};
// Emit the cross-belt brim lines that belong to the band [print_z - height, print_z].
static void belt_brim_band_paths(const BeltBrimContext &bc,
coordf_t print_z,
coordf_t height,
const Polygons &obstacles,
ExtrusionEntityCollection &out,
ExPolygons &areas_out)
{
coordf_t u_lo = bc.ctx.cutoff_u(print_z - height);
coordf_t u_hi = bc.ctx.cutoff_u(print_z);
if (u_lo > u_hi)
std::swap(u_lo, u_hi);
// How wide this band is measured ON the belt, versus one nominal bead.
const double band_in_plane = (u_hi - u_lo) * bc.frame.u_stretch();
// Fraction of the layer height at which a line sits above the belt. Toward the
// downhill edge, so the sheet is reasonably thick while the nozzle stays clear of
// the belt itself.
static constexpr double BAND_CLEARANCE_FRACTION = 0.75;
std::vector<coord_t> us;
double uniform_clearance = 0.; // 0 => derive per line from its own position
double line_pitch = bc.in_plane_pitch;
// One line also serves a band up to half a bead wider than the nominal pitch (a 0.3 mm
// first layer at 45 degrees): its flow is matched to the band, so the bead is that much
// wider. Two lattice lines in such a band would land almost on top of each other.
if (band_in_plane <= 1.5 * bc.in_plane_pitch + EPSILON) {
// Steep belt, which is the normal case: the band is narrower than one bead, so
// exactly one line fits. Place it at a FIXED fraction of the band rather than
// on a nominal-spacing lattice. On a lattice each line lands at an arbitrary
// point in its band, the clearance sweeps [0, height] from band to band, and the
// bead width therefore varies by 2x - visible as ragged, uneven brim lines.
// Anchoring to the band makes the clearance identical everywhere, so every bead
// is the same width.
//
// The spacing is then whatever the bands give (height / sin(tilt) on the belt)
// rather than the nominal bead spacing, so the flow below is matched to THAT
// pitch. Matched flow at the real pitch is what keeps the sheet uniform and
// gap-free; using nominal flow at band spacing would over-feed it.
us.push_back(scale_(bc.ctx.cutoff_u(print_z - BAND_CLEARANCE_FRACTION * height)));
uniform_clearance = BAND_CLEARANCE_FRACTION * height;
line_pitch = band_in_plane;
} else {
// Shallow belt: the band is wider than a bead, so it takes several lines and they
// have to sit on the nominal lattice. Their clearances then differ, and so do
// their widths - unavoidable here, but shallow belts are the rare case.
us = belt_brim_line_positions(scale_(u_lo), scale_(u_hi), bc.pitch_u, bc.u_anchor);
}
if (us.empty())
return;
const Polygons region_polys = to_polygons(bc.region);
// One lattice line at a time: the clearance - and therefore the extrusion
// volume - is a property of the line's u, so the pieces of different lines
// must not be pooled before the flow is resolved.
// Overshoot the region so the clip, not the line's ends, decides the extent.
const coord_t margin = coord_t(SCALED_EPSILON) + 1;
coord_t u_prev = std::numeric_limits<coord_t>::min();
for (coord_t u : us) {
// Nozzle-to-belt clearance for this line. Constant along the line, because the
// belt height depends only on the shear-axis coordinate. Band-anchored lines
// share one clearance by construction; lattice lines (shallow belts, or a first
// layer thick enough that the band is wider than a bead) each get their own.
//
// A lattice line can fall where the belt is only a hair below the band's print_z.
// The bead there would be laid scraping the belt while its flow is sized for a
// taller cell, so it is moved uphill to the same fraction of the band the
// single-line case uses. (The clearance is along slice Z; the real gap under the
// nozzle is clearance x cos(tilt), 0.53 h at 45 degrees for the 0.75 fraction.)
double clearance = uniform_clearance;
if (clearance <= 0.) {
const Point probe = bc.frame.from_axis == 0 ? Point(u, 0) : Point(0, u);
clearance = print_z - bc.ctx.floor_print_z(probe);
if (clearance < BAND_CLEARANCE_FRACTION * height) {
clearance = BAND_CLEARANCE_FRACTION * height;
u = scale_(bc.ctx.cutoff_u(print_z - clearance));
}
clearance = std::min(clearance, height);
}
// A line moved uphill can land on, or almost on, its neighbour; two beads closer
// than half a pitch would be laid into the same cell.
if (u_prev != std::numeric_limits<coord_t>::min() && std::abs(u - u_prev) < bc.pitch_u / 2)
continue;
u_prev = u;
Polyline line;
if (bc.frame.from_axis == 0)
line.points = { Point(u, coord_t(bc.region_bbox.min.y() - margin)),
Point(u, coord_t(bc.region_bbox.max.y() + margin)) };
else
line.points = { Point(coord_t(bc.region_bbox.min.x() - margin), u),
Point(coord_t(bc.region_bbox.max.x() + margin), u) };
Polylines pieces = intersection_pl(Polylines{ line }, region_polys);
if (! obstacles.empty())
pieces = diff_pl(pieces, obstacles);
if (pieces.empty())
continue;
// with_cross_section, not with_height: it reaches the prescribed volume while
// KEEPING the extrusion spacing, so the bead is sized to fill exactly one
// pitch x clearance cell of the sheet.
const Flow f = bc.brim_flow.with_cross_section(float(line_pitch * clearance));
// Footprint of these beads, for the first-layer convex hull and bbox.
for (const Polygon &p : offset(pieces, 0.5f * float(f.scaled_width())))
areas_out.emplace_back(ExPolygon(p));
extrusion_entities_append_paths(out.entities, chain_polylines(std::move(pieces)),
erBrim, f.mm3_per_mm(), f.width(), float(clearance));
}
}
// Union of everything extruded at `print_z` that the brim must keep clear of, expressed
// in `self`'s local slicing frame. Includes `self` itself: its slice at this Z can
// overhang outside the belt footprint and land in the brim ring, which the flattened
// brim_object_gap - a belt-plane separation - does not cover.
//
// SEQUENCING: this reads every object's layers and this object's own support layers.
// Another object's support step shifts that object's layer Z into the object frame for
// the duration of the run (PrintObject::_generate_support_material()), so the brims must
// not overlap with the parallel support step: Print::process() generates them one object
// after the other once that step is over (PrintObject::generate_belt_brim()), and an
// object that arrives on or leaves the plate invalidates the other brim owners' support
// step (PrintApply.cpp) so their brims are clipped against what is there now. Only this
// object's supports are dodged; another object's support at the same Z is not.
// `region_bbox` bounds the brim; anything outside it cannot clip a brim line, so whole
// objects are skipped without materialising their polygons. On a typical plate the
// objects do not overlap and every foreign object drops out here, which matters because
// this runs once per band - hundreds of times per object.
static Polygons belt_brim_obstacles(const Print &print, const PrintObject &self,
const BoundingBox &region_bbox, coordf_t print_z, coordf_t tol)
{
const Point shift_self = self.instances().empty() ? Point(0, 0)
: self.instances().front().shift_without_plate_offset();
Polygons out;
for (const PrintObject *o : print.objects()) {
const bool is_self = (o == &self);
for (const PrintInstance &inst : o->instances()) {
const Point delta = inst.shift_without_plate_offset() - shift_self;
if (const Layer *l = o->get_layer_at_printz(print_z, tol)) {
BoundingBox lb = get_extents(l->lslices);
lb.translate(delta.x(), delta.y());
if (lb.overlap(region_bbox)) {
Polygons ps = to_polygons(l->lslices);
for (Polygon &p : ps)
p.translate(delta);
polygons_append(out, std::move(ps));
}
}
if (! is_self)
continue;
if (const SupportLayer *sl = o->get_support_layer_at_printz(print_z, tol)) {
Polygons ps = sl->support_fills.polygons_covered_by_spacing();
for (Polygon &p : ps)
p.translate(delta);
polygons_append(out, std::move(ps));
}
}
}
if (out.size() < 2)
return out; // union_() of 0 or 1 polygons is pure overhead
return union_(out);
}
void make_belt_brim(PrintObject &object)
{
object.clear_belt_brim();
if (! object.has_belt_brim())
return;
const Print &print = *object.print();
BeltBrimContext bc;
if (! bc.ctx.init(object.slicing_parameters(), print.config()))
return;
bc.frame = BeltBrimFrame{ bc.ctx.shear_factor(), bc.ctx.from_axis() };
const size_t nlayers = object.layers().size();
if (nlayers == 0)
return;
// 1. Belt footprint: the union of each layer's slice clipped to that layer's
// own contact band. This is the object's bottom face, which on a belt is
// spread over every layer instead of sitting in layer 0.
ExPolygons footprint_acc;
for (size_t i = 0; i < nlayers; ++ i) {
const Layer &layer = *object.layers()[i];
if (layer.lslices.empty())
continue;
// print_z - height, not the previous layer's print_z: variable layer
// heights make the latter wrong.
coordf_t u_lo = bc.ctx.cutoff_u(layer.print_z - layer.height);
coordf_t u_hi = bc.ctx.cutoff_u(layer.print_z);
if (u_lo > u_hi)
std::swap(u_lo, u_hi);
BoundingBox bb = get_extents(layer.lslices);
bb.offset(scale_(1.));
const Polygon band = band_box(bb, bc.frame.from_axis, u_lo, u_hi);
if (band.empty())
continue;
expolygons_append(footprint_acc, intersection_ex(layer.lslices, Polygons{ band }));
}
const ExPolygons footprint = union_ex(footprint_acc);
if (footprint.empty())
return;
// 2. Brim region, offset in the flattened (true on-belt) metric.
const PrintObjectConfig &cfg = object.config();
bc.brim_flow = print.brim_flow();
const double flow_w = bc.brim_flow.scaled_spacing() * SCALING_FACTOR;
// Quantize to an even number of lines, as the plate brim does.
const coord_t width = scale_(std::floor(cfg.brim_width.value / flow_w / 2) * flow_w * 2);
const coord_t leading = scale_(cfg.leading_brim_length.value);
const coord_t lateral = scale_(cfg.extra_brim_width.value);
const coord_t gap = scale_(cfg.brim_object_gap.value);
// Belt printers collapse Auto / Mouse ear / Painted to outer-only: the auto width
// heuristic and flat ear discs have no meaning on a tilted plane. Leading-edge-only
// is an outer brim too; it is narrowed down to the first contact below.
const BrimType bt = cfg.brim_type.value;
const bool has_outer = bt == btOuterOnly || bt == btOuterAndInner
|| bt == btAutoBrim || bt == btEar || bt == btPainted
|| bt == btLeadingEdgeOnly;
const bool has_inner = bt == btInnerOnly || bt == btOuterAndInner;
bc.region = belt_unflatten(
belt_brim_region(belt_flatten(footprint, bc.frame), has_outer, has_inner,
width, gap, leading, lateral, bc.frame),
bc.frame);
if (bt == btLeadingEdgeOnly && ! bc.region.empty()) {
// The cut is the uphill edge of the first contact's band: everything past it
// belongs to later contacts. The first contact is the first layer with
// geometry, not layers().front(): the slicing frame starts at the belt below
// the footprint, so the leading layers are empty and their contact lies ahead
// of the part.
const Layer *first_contact = nullptr;
for (const Layer *layer : object.layers())
if (! layer->lslices.empty()) { first_contact = layer; break; }
if (first_contact == nullptr)
return;
bc.region = belt_brim_clip_leading_edge(bc.region, bc.frame, bc.ctx.cutoff_u(first_contact->print_z));
}
if (bc.region.empty())
return;
bc.region_bbox = get_extents(bc.region);
// 3. Line lattice. Fixed pitch in the flattened metric, anchored at the
// footprint's leading-most edge so lines stay collinear across
// disconnected islands and across the apron prologue.
bc.pitch_u = std::max<coord_t>(1, coord_t(bc.brim_flow.scaled_spacing() * bc.frame.cos_tilt()));
bc.in_plane_pitch = unscale<double>(bc.pitch_u) * bc.frame.u_stretch();
{
const BoundingBox fbb = get_extents(footprint);
const bool low_side = bc.frame.shear > 0.;
bc.u_anchor = bc.frame.from_axis == 0 ? (low_side ? fbb.min.x() : fbb.max.x())
: (low_side ? fbb.min.y() : fbb.max.y());
}
// 4. Bands coincident with an object layer.
std::vector<ExtrusionEntityCollection> by_layer(nlayers);
std::vector<ExPolygons> areas_by_layer(nlayers);
for (size_t i = 0; i < nlayers; ++ i) {
const Layer &layer = *object.layers()[i];
const Polygons obstacles = belt_brim_obstacles(print, object, bc.region_bbox, layer.print_z, 0.5 * layer.height);
belt_brim_band_paths(bc, layer.print_z, layer.height, obstacles, by_layer[i], areas_by_layer[i]);
}
// 5. Apron prologue: the part of the region downhill of the object's first
// layer, which has no object layer to ride on.
std::vector<BeltBrimBand> prologue;
{
const Layer &first = *object.layers().front();
const coordf_t h = first.height;
const bool low_side = bc.frame.shear > 0.;
const coord_t u_lead_s = bc.frame.from_axis == 0
? (low_side ? bc.region_bbox.min.x() : bc.region_bbox.max.x())
: (low_side ? bc.region_bbox.min.y() : bc.region_bbox.max.y());
const coordf_t u_lead = unscale<double>(u_lead_s);
// print_z at which the belt surface crosses the region's leading edge.
const coordf_t z_lead = bc.ctx.shear_factor() * u_lead
+ bc.ctx.floor_offset() + bc.ctx.z_shift();
if (h > EPSILON)
for (coordf_t z = first.print_z - h; z > z_lead - h; z -= h) {
const Polygons obstacles = belt_brim_obstacles(print, object, bc.region_bbox, z, 0.5 * h);
BeltBrimBand band;
band.print_z = z;
band.height = h;
belt_brim_band_paths(bc, z, h, obstacles, band.fills, band.areas);
if (! band.fills.empty())
prologue.emplace_back(std::move(band));
}
// Lowest Z first, so collect_layers_to_print sees them in print order.
std::reverse(prologue.begin(), prologue.end());
}
object.set_belt_brim(std::move(by_layer), std::move(areas_by_layer), std::move(prologue));
}
} // namespace Slic3r
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#ifndef slic3r_BeltBrim_hpp_
#define slic3r_BeltBrim_hpp_
#include "ExPolygon.hpp"
#include "ExtrusionEntityCollection.hpp"
#include "Point.hpp"
#include "Polyline.hpp"
#include "libslic3r.h"
#include <cmath>
#include <vector>
// Belt-printer brim geometry.
//
// A belt printer slices in a ROTATED frame, so the belt surface is not the
// Z=0 bed plane but a tilted plane in slicing space:
//
// z_slicing(u) = shear * u + floor_offset + z_shift, u = X or Y
//
// where `shear == tan(tilt)` (SlicingParameters::belt_floor_shear_factor) and
// the axis is selected by SlicingParameters::belt_floor_from_axis. See
// Support/BeltFloorContext.hpp for the canonical accessors.
//
// Consequences that drive everything in this file:
//
// * A horizontal slicing layer touches the belt only along a narrow strip at
// its leading edge, `layer_height / shear` wide (~0.2 mm at 45 degrees).
// The object's belt footprint - its bottom face - is therefore spread over
// every layer, not contained in layer 0.
// * Distances measured in slicing XY are NOT on-belt distances: moving `du`
// along the shear axis travels `du / cos(tilt)` across the belt. So brim
// offsets have to be taken in a "flattened" space where the shear axis is
// stretched by `1 / cos(tilt)`, then mapped back.
// * Brim ahead of the part (downhill) lies at slicing Z BELOW the object's
// first layer, because the object's layer 0 is precisely its leading
// contact with the belt.
//
// Everything here is pure geometry on ExPolygons/Polylines so it can be unit
// tested without a Print. Keep user-visible strings out of this file: it is
// not listed in localization/i18n/list.txt.
namespace Slic3r {
// Tilt window within which the BELT plane, not the bed plane, is the adhesion
// surface. Below ~1 degree a belt is a flat bed as far as adhesion goes, and the
// contact band would be layer_height/sin(tilt) - tens of millimetres - so the
// ordinary plate brim is both correct and cheaper. Above ~85 degrees the whole
// brim compresses into a sliver and is not worth generating.
inline constexpr double BELT_BRIM_MIN_TILT_DEG = 1.;
inline constexpr double BELT_BRIM_MAX_TILT_DEG = 85.;
// Description of the tilted belt plane, reduced to what the brim geometry needs.
struct BeltBrimFrame
{
// tan(tilt). Sign selects which way is downhill.
double shear = 0.;
// 0 = X, 1 = Y. Matches BeltFloorContext::from_axis().
int from_axis = 1;
// 1 / cos(tilt). Stretch factor that turns a projected distance along
// `from_axis` into the true distance travelled across the belt.
double u_stretch() const { return std::sqrt(1. + shear * shear); }
// cos(tilt). The inverse mapping.
double cos_tilt() const { return 1. / this->u_stretch(); }
// Downhill is where the belt surface is lower, i.e. printed earlier, i.e.
// the leading edge of the part. For shear > 0 that is -u.
int downhill_sign() const { return shear > 0. ? -1 : +1; }
};
// Scale only the `from_axis` component by `factor`, rounding to nearest.
//
// Deliberately not MultiPoint::scale(fx, fy) / ExPolygon::scale(fx, fy): those
// truncate toward zero, which is asymmetric about the origin and loses up to a
// full coordinate unit per vertex on every round trip.
ExPolygons belt_scale_u(const ExPolygons &src, const BeltBrimFrame &frame, double factor);
Polylines belt_scale_u(const Polylines &src, const BeltBrimFrame &frame, double factor);
// Into / out of the space where Euclidean offsets equal true on-belt distances.
inline ExPolygons belt_flatten(const ExPolygons &src, const BeltBrimFrame &frame)
{ return belt_scale_u(src, frame, frame.u_stretch()); }
inline ExPolygons belt_unflatten(const ExPolygons &src, const BeltBrimFrame &frame)
{ return belt_scale_u(src, frame, frame.cos_tilt()); }
// Minkowski sum of `src` with the segment [0, t]: the region swept by sliding
// `src` along t. Used to grow the brim downhill for "extra brim width".
//
// Implemented as union_(P, P + t, {parallelogram per boundary edge}) over ALL
// contours including holes, with every parallelogram forced counter-clockwise
// so the non-zero fill rule closes holes narrower than t along the sweep
// direction. A hole survives exactly when it is wider than |t| measured along
// t - not when it is wider in its narrowest Euclidean direction.
ExPolygons sweep_ex(const ExPolygons &src, const Point &t);
// "Leading edge only": keep the part of a brim region (unflattened, slicing XY)
// at or downhill of the object's first contact with the belt, so the part is
// supported as it lands and nothing is printed alongside it afterwards. `u_cut`
// is the uphill edge of the first layer's contact band along `frame.from_axis`,
// in mm (BeltFloorContext::cutoff_u of the first layer); downhill is the side
// `frame.downhill_sign()` points to.
ExPolygons belt_brim_clip_leading_edge(const ExPolygons &region, const BeltBrimFrame &frame, coordf_t u_cut);
// Brim region for one already-flattened belt footprint. All lengths are scaled
// and measured in the flattened (true on-belt) metric.
//
// `has_outer` / `has_inner` are the resolved BrimType: belt printers collapse
// Auto / Mouse ear / Painted to outer-only, so the caller does that mapping and
// this function never needs PrintConfig.
//
// Two directional extras are applied to the footprint before the outer offset, so
// each one buys reach in one direction only:
//
// `leading` (leading_brim_length) sweeps the footprint DOWNHILL along the belt,
// so every leading-facing edge gains an apron ahead of it.
// `lateral` (extra_brim_width) sweeps it BOTH WAYS across the belt, widening
// the brim sideways without pushing it further ahead or behind.
//
// Neither is applied to the inner (hole) ring.
ExPolygons belt_brim_region(const ExPolygons &footprint_flat,
bool has_outer,
bool has_inner,
coord_t brim_width,
coord_t object_gap,
coord_t leading,
coord_t lateral,
const BeltBrimFrame &frame);
// Brim line positions for one layer band.
//
// Lines sit on a fixed lattice `u_anchor + k * pitch_u` so the on-belt spacing
// between neighbouring brim lines is constant regardless of how the lattice
// falls across layer bands. Snapping to band centres instead would quantise
// the spacing to whole bands and under-deposit by ~35% at 45 degrees.
//
// The band is half-open, [u_lo, u_hi), so every lattice point belongs to
// exactly one band: none duplicated at a boundary, none dropped. A band
// narrower than the pitch simply yields nothing; a band much wider (shallow
// tilt) yields several lines.
std::vector<coord_t> belt_brim_line_positions(coord_t u_lo,
coord_t u_hi,
coord_t pitch_u,
coord_t u_anchor);
// ---------------------------------------------------------------- pipeline
// One brim-only layer printed BEFORE the object's first layer, carrying the
// apron that has to be stuck to the belt ahead of the part.
//
// Deliberately not a Layer subclass. A synthetic Layer would inherit id()
// semantics that leak into initial-layer temperature selection, the spiral vase
// probe, gradual interpolation, avoid-crossing-perimeters and cooling, all of
// which key off Layer::id() == 0 or off a layer's regions. A plain record
// carries only what the emitter needs.
//
// `height` is the LAYER height, used for the Z move and ordering metadata only.
// Each extrusion path inside `fills` carries its own height, equal to that
// line's nozzle-to-belt clearance, which varies across the band.
struct BeltBrimBand
{
coordf_t print_z = 0.;
coordf_t height = 0.;
// erBrim paths in the object's local slicing frame, untranslated.
ExtrusionEntityCollection fills;
// Footprint of those paths, for the first-layer convex hull / bbox.
ExPolygons areas;
};
class PrintObject;
// Generate the belt brim for one object: fills its per-object-layer bands and
// its apron prologue. No-op unless PrintObject::has_belt_brim().
//
// Runs inside posSupportMaterial rather than the brim step, because the prologue
// print_z values must exist before ToolOrdering is built at psWipeTower.
void make_belt_brim(PrintObject &object);
} // namespace Slic3r
#endif // slic3r_BeltBrim_hpp_
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#include "BeltGCode.hpp"
#include "GCodeWriter.hpp"
#include "GCode/BeltKinematics.hpp"
#include "BeltTransform.hpp"
#include "Print.hpp"
#include "Point.hpp"
#include "PrintConfig.hpp"
#include "libslic3r.h"
#include <cstdlib>
namespace Slic3r {
void BeltGCode::init_belt_writer(Print &print)
{
// Axis remap and build volume max are set by base GCode after init_belt_writer
// returns; set_kinematics() replays them, so install order does not matter.
install_belt_kinematics(m_writer, print.config());
m_writer.set_force_normal_lift(true);
}
void BeltGCode::write_belt_header(GCodeOutputStream &file, const Print &print)
{
const auto &full_cfg = print.full_print_config();
// Slicing rotation: the belt tilt (axis + angle) and the single source of truth
// for the physical tilt the G-code viewer uses to enable belt view.
file.write_format("; belt_slice_rotation = %s\n", full_cfg.opt_serialize("belt_slice_rotation").c_str());
file.write_format("; belt_slice_rotation_angle = %.1f\n", print.config().belt_slice_rotation_angle.value);
// Machine-frame transform: shear (cot) + scale (1/|sin|) derived from the belt
// tilt angle (or belt_frame_tilt_angle when decoupled).
file.write_format("; belt_frame_tilt_decouple = %d\n", print.config().belt_frame_tilt_decouple.value ? 1 : 0);
file.write_format("; belt_frame_tilt_angle = %.1f\n", print.config().belt_frame_tilt_angle.value);
}
void BeltGCode::on_set_origin(const PrintObject * /*obj*/, const Point & /*inst_shift*/)
{
// Matches the per-instance Z-offset added in PrintObjectSlice.cpp: transform
// the origin through the belt pipeline so that back_transform(T * origin) =
// origin (correct machine position). The back_transform applied during
// G-code emission is the inverse of the forward transform.
// Adjust origin: transform through belt forward pipeline so that
// the back-transform correctly recovers model-space positions.
Transform3d T = BeltTransformPipeline::build_forward_transform(m_config);
Vec2d cur_origin = this->origin();
Vec3d origin3d(cur_origin.x(), cur_origin.y(), 0.);
Vec3d adjusted = T.linear() * origin3d;
this->set_origin(Vec2d(adjusted.x(), adjusted.y()));
}
} // namespace Slic3r
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#pragma once
#include "GCode.hpp"
#include "Point.hpp"
#include "Print.hpp"
namespace Slic3r {
// Belt-printer-specific GCode export.
//
// Inherits from GCode and overrides virtual hooks to:
// - Install a BeltKinematics on the GCodeWriter
// - Write belt configuration to the G-code header
// - Adjust the origin for global pre-slice transforms when switching instances
// (Arc fitting is disabled for belt printers by BeltKinematics::supports_arc_moves(),
// which the base GCode::should_disable_arc_fitting() consults -- no override needed.)
class BeltGCode : public GCode
{
protected:
void init_belt_writer(Print &print) override;
void write_belt_header(GCodeOutputStream &file, const Print &print) override;
void on_set_origin(const PrintObject *obj, const Point &inst_shift) override;
};
} // namespace Slic3r
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// ORCA-Belt: backend of the belt purge tower (the belt replacement for the
// classic wipe/prime tower).
//
// Kept in its own translation unit so the belt-purge logic stays out of the way
// of unrelated upstream changes to Print.cpp / PrintObjectSlice.cpp and carries
// no regression risk for normal printers: none of these methods do anything
// unless the print is a belt printer with the belt purge tower enabled.
//
// Print::has_belt_purge_tower() - is the belt purge tower active?
// Print::_align_belt_purge_layers() - snap the prism's layer grid onto the
// printed objects' grid
// Print::_plan_belt_purge() - route filament-change purging into the
// prism (flush-into-objects), no wipe tower
// PrintObject::belt_shift_layer_grid() - shift a sliced layer grid
// PrintObject::belt_truncate_layers_above() - cancel the prism past the last swap
//
// (Declarations live in Print.hpp alongside the rest of the Print interface.)
#include "Print.hpp"
#include "PrintConfig.hpp"
#include "Exception.hpp"
#include "GCode/ToolOrdering.hpp"
#include "Layer.hpp"
#include "ExtrusionEntity.hpp"
#include "ExtrusionEntityCollection.hpp"
#include "I18N.hpp"
#include "format.hpp"
#include "LocalesUtils.hpp"
#include "libslic3r.h"
#include "BeltBrim.hpp"
#include "PrintBase.hpp"
#include <algorithm>
#include <cmath>
#include <limits>
#include <boost/log/trivial.hpp>
#include <cassert>
#include <cstddef>
#include <functional>
#include <utility>
#include <vector>
namespace Slic3r {
// Belt purge prism: purging after filament changes is routed into a sliced
// prism object via the flush-into-objects machinery instead of a wipe tower.
bool Print::has_belt_purge_tower() const
{
// Its own purge-tower "type", gated by the belt-only enable_belt_purge_tower
// option (not the classic enable_prime_tower).
if (!(m_config.belt_printer.value
&& m_config.enable_belt_purge_tower.value
&& !m_config.spiral_mode.value
&& m_config.filament_diameter.values.size() > 1))
return false;
return std::any_of(m_objects.begin(), m_objects.end(), [](const PrintObject *object) {
return object->config().belt_purge_tower_object.value;
});
}
// Belt mode: align ALL objects on the plate (the printed objects AND the purge
// prism) onto one common layer grid, so the prism can absorb every toolchange.
//
// After belt slicing each object's layer print_z carries a per-object global z
// offset (mesh-vertex-scan belt_z_shift + instance-Y-dependent terms), so
// objects at different belt-Y positions get layer grids with DIFFERENT residues
// (mod layer height). Purge marking looks absorbers up with
// get_layer_at_printz(lt.print_z, EPSILON), so a toolchange on object B only
// absorbs into the prism if the prism has a layer at B's print_z. Snapping only
// the prism to one object therefore worked for a single (assembled) multi-color
// object but failed with multiple separate objects — the prism could follow only
// one grid, and toolchanges on the others went unabsorbed ("multiple layer
// grids" warning).
//
// Fix: pick one reference grid (the tallest object) and shift every object onto
// it. Each shift is at most half a layer height — a sub-100µm move along the
// belt, the very same mechanism the per-object global_z_offset already uses, and
// it keeps each object internally consistent (belt_shift_layer_grid moves the
// object's layers, its support layers, and its belt floor together). Equal layer
// height across objects is enforced by Print::validate(), so once residues match
// every object steps on the same lattice {ref_offset + k*h} and every toolchange
// layer coincides with a prism layer.
void Print::_align_belt_purge_layers()
{
PrintObject *prism = nullptr;
for (PrintObject *po : m_objects)
if (po->config().belt_purge_tower_object.value && !po->layers().empty()) {
prism = po;
break;
}
if (prism == nullptr || prism->layers().empty())
return;
const double h = prism->config().layer_height.value;
if (h <= EPSILON)
return;
// Grid residue of an object's layer grid: identical for all of an object's
// layers above the first since they step by h.
auto grid_offset = [h](const PrintObject *po) -> double {
if (po->layers().empty())
return 0.;
const double z = po->layers().front()->print_z;
return z - std::floor(z / h) * h; // in [0, h)
};
// Reference grid: the tallest non-prism object (proxy for the object with
// the most toolchange layers — minimizes how far the rest must move).
const PrintObject *ref = nullptr;
double ref_top = -std::numeric_limits<double>::max();
for (const PrintObject *po : m_objects) {
if (po->config().belt_purge_tower_object.value || po->layers().empty())
continue;
const double top = po->layers().back()->print_z;
if (top > ref_top) {
ref_top = top;
ref = po;
}
}
if (ref == nullptr)
return;
const double ref_offset = grid_offset(ref);
// Snap every object (printed objects AND the prism) onto the reference grid.
for (PrintObject *po : m_objects) {
if (po->layers().empty())
continue;
double delta = ref_offset - grid_offset(po);
if (delta > 0.5 * h)
delta -= h;
else if (delta <= -0.5 * h)
delta += h;
po->belt_shift_layer_grid(delta); // no-op for the reference object (delta ~ 0)
}
}
// Belt mode replacement for _make_wipe_tower(): plan filament-change purging
// into the belt purge prism (and any other flush_into_* object) using the
// flush-into-objects machinery, without generating classic wipe tower G-code.
// The toolchange itself is emitted by GCode::set_extruder() via the
// change_filament_gcode macro; the overrides marked here make the new
// filament's first extrusions land in the purge prism.
void Print::_plan_belt_purge()
{
m_wipe_tower_data.clear();
// psWipeTower may be invalidated without posSlice (for example after a
// filament-map or tool-ordering change). Restore a prism shortened by the
// previous plan so a newly higher toolchange can use its original layers.
for (PrintObject *po : m_objects)
if (po->config().belt_purge_tower_object.value)
po->belt_undo_purge_plan();
// Must run before ToolOrdering is built: LayerTools merge per-object layer
// print_z values, and the prism only absorbs purge where its (snapped)
// layers coincide with the toolchange layers.
this->_align_belt_purge_layers();
const unsigned int number_of_extruders = (unsigned int) m_config.filament_colour.values.size();
// No initial priming extrusions: there is no tower to prime on.
m_wipe_tower_data.tool_ordering = ToolOrdering(*this, (unsigned int) -1, false);
m_wipe_tower_data.tool_ordering.sort_and_build_data(*this, (unsigned int) -1, false);
if (m_wipe_tower_data.tool_ordering.empty() || m_wipe_tower_data.tool_ordering.last_extruder() == unsigned(-1))
throw Slic3r::SlicingError("The print is empty. The model is not printable with current print settings.");
// Is there any filament change at all? Not ToolOrdering::has_wipe_tower(): that reads the
// FIRST layer's flag, and on a belt the first layer may be a brim apron band, which carries
// neither object nor support and so never gets the flag even when the print changes filament.
{
bool any_change = false;
unsigned int cur = m_wipe_tower_data.tool_ordering.first_extruder();
for (const auto &lt : m_wipe_tower_data.tool_ordering.layer_tools())
for (const unsigned int e : lt.extruders)
if (e != cur) { any_change = true; cur = e; }
if (! any_change)
return;
}
this->throw_if_canceled();
// Flush volumes per filament pair, mirroring the generic wipe tower path:
// full flush matrix for single extruder multi material with purging enabled,
// plain prime volume otherwise.
std::vector<float> flush_matrix(cast<float>(
get_flush_volumes_matrix(m_config.flush_volumes_matrix.values, 0, m_config.nozzle_diameter.values.size())));
std::vector<std::vector<float>> wipe_volumes;
for (unsigned int i = 0; i < number_of_extruders; ++i)
wipe_volumes.push_back(std::vector<float>(flush_matrix.begin() + i * number_of_extruders,
flush_matrix.begin() + (i + 1) * number_of_extruders));
const bool use_flush_matrix = m_config.purge_in_prime_tower && m_config.single_extruder_multi_material;
const float flush_multiplier = (float) m_config.flush_multiplier.get_at(0);
// Cancel the purge prism early: pre-scan the tool ordering for the highest
// print_z that actually has a toolchange, then drop the prism's layers above
// it so the tower stops at the last color swap (saves filament/time). This
// MUST happen before the marking loop below: ensure_perimeters_infills_order
// force-overrides the prism's extrusions on every layer (it is a dedicated
// flush object), so truncating afterwards would leave dangling overrides
// pointing into deleted layers.
{
// The tool ordering covers the WHOLE print, and the prism is a printed
// object in it. Left unbounded, the scan below sees the prism's own
// toolchanges on layers above every model object -- the prism runs past
// them by design (ramp/height compensation at the tilted ends) -- so
// last_tc_z lands at the prism's own top and the truncation cancels
// nothing. The tower ends up justifying its own existence.
//
// Nothing above the tallest printed object can require a color change,
// so bound the scan there. On MCTEST5 that is 197 toolchanges spanning
// z=154.00..193.20 with the tallest object topping out at 153.80, i.e.
// 39.4 mm of tower that no swap ever needed.
// Support layers count too: on a belt they can extend above the object's
// own top, and a toolchange there is a real one.
double obj_top_z = -1.;
for (const PrintObject *po : m_objects) {
if (po->config().belt_purge_tower_object.value)
continue;
if (!po->layers().empty())
obj_top_z = std::max(obj_top_z, po->layers().back()->print_z);
if (!po->support_layers().empty())
obj_top_z = std::max(obj_top_z, po->support_layers().back()->print_z);
}
double last_tc_z = -1.;
unsigned int cur_ext = m_wipe_tower_data.tool_ordering.first_extruder();
for (const auto &lt : m_wipe_tower_data.tool_ordering.layer_tools()) {
// layer_tools() is ordered by print_z ascending.
if (obj_top_z >= 0. && lt.print_z > obj_top_z + EPSILON)
break;
for (const unsigned int e : lt.extruders)
if (e != cur_ext) { last_tc_z = lt.print_z; cur_ext = e; }
}
// Deliberately NOT cancelling the prism outright when no object toolchange
// exists: belt_truncate_layers_above(0.) empties m_layers, and an object
// with zero layers is not something the rest of the pipeline expects. The
// GUI already declines to create a prism unless more than one filament is
// in use, so this case is a stale prism, not a hot path -- leave it whole
// rather than risk a zero-layer object.
if (last_tc_z >= 0.)
for (PrintObject *po : m_objects)
if (po->config().belt_purge_tower_object.value && !po->layers().empty()) {
po->belt_truncate_layers_above(last_tc_z);
break;
}
}
// The prism only absorbs purge at toolchange layers whose print_z coincides
// with one of its own layers.
PrintObject *prism_po = nullptr;
for (PrintObject *po : m_objects)
if (po->config().belt_purge_tower_object.value && !po->layers().empty()) { prism_po = po; break; }
float total_leftover = 0.f;
float worst_layer_leftover = 0.f;
double worst_layer_z = 0.;
unsigned int current_extruder_id = m_wipe_tower_data.tool_ordering.first_extruder();
for (auto &layer_tools : m_wipe_tower_data.tool_ordering.layer_tools()) {
float layer_leftover = 0.f;
for (const unsigned int extruder_id : layer_tools.extruders) {
if (extruder_id == current_extruder_id)
continue;
float volume_to_wipe = use_flush_matrix ?
wipe_volumes[current_extruder_id][extruder_id] * flush_multiplier :
(float) m_config.prime_volume;
float leftover = layer_tools.wiping_extrusions().mark_wiping_extrusions(*this, current_extruder_id, extruder_id,
volume_to_wipe);
layer_leftover += leftover;
current_extruder_id = extruder_id;
}
// Plastic saving: drop the prism's fills that no toolchange on this layer
// claimed. At this point the prism's OVERRIDDEN fills are exactly the
// purge; the rest would print as solid infill in the prism's own filament
// for nothing -- which is the whole prism on a layer with no toolchange
// (141 of 692 layers on MCTEST5 before the truncation fix). Perimeters are
// left alone so the bar keeps a continuous wall along the belt.
//
// Non-destructive: the entities are stashed with their positions and put
// back by belt_restore_dropped_fills() at the top of the next plan. An
// earlier version deleted them outright, which broke replanning when a
// later tool ordering needed what this one had not claimed -- that is why
// it was removed rather than kept.
if (prism_po != nullptr) {
const auto &we = layer_tools.wiping_extrusions();
prism_po->belt_drop_unclaimed_fills(
prism_po->get_layer_at_printz(layer_tools.print_z, EPSILON),
[&we, prism_po](const ExtrusionEntity *e) { return we.is_entity_overridden(e, prism_po, 0); });
}
layer_tools.wiping_extrusions().ensure_perimeters_infills_order(*this);
if (layer_leftover > 0.f) {
total_leftover += layer_leftover;
if (layer_leftover > worst_layer_leftover) {
worst_layer_leftover = layer_leftover;
worst_layer_z = layer_tools.print_z;
}
}
this->throw_if_canceled();
}
if (total_leftover > 1.f) {
this->active_step_add_warning(
PrintStateBase::WarningLevel::CRITICAL,
Slic3r::format(_u8L("The belt purge tower cannot absorb the full purge volume: %1% mm³ in total could not "
"be purged (worst layer: %2% mm³ at height %3%). The print may show color bleeding. "
"Increase the belt purge tower width, or reduce flushing volumes."),
int(std::ceil(total_leftover)), int(std::ceil(worst_layer_leftover)),
Slic3r::float_to_string_decimal_point(worst_layer_z, 2)));
}
}
// Belt mode: shift the sliced layer grid by delta. Mirrors the global_z_offset
// application in slice() — layer print_z and belt_floor_z_shift move together
// so belt floor clipping stays consistent with the shifted grid. Used by
// Print::_align_belt_purge_layers() to snap the purge prism onto the printed
// objects' layer grid; |delta| <= half a layer height, i.e. a sub-layer shift
// of the prism along the belt.
void PrintObject::belt_shift_layer_grid(double delta)
{
if (std::abs(delta) < EPSILON)
return;
for (Layer *layer : m_layers)
layer->print_z += delta;
for (SupportLayer *layer : m_support_layers)
layer->print_z += delta;
// The brim's apron bands below the first layer carry their own print_z.
for (BeltBrimBand &band : m_belt_brim_prologue)
band.print_z += delta;
m_slicing_params.belt_floor_z_shift += delta;
// The grid stays shifted across a support-only or brim-only change (posSlice does
// not rerun), so everything slice() derived from it has to follow: the cached floor
// that update_slicing_parameters() restores, and the global offset the organic
// support layers and the adaptive infill octree are placed with. Left alone, the
// next alignment finds a delta of 0 and the floor and the supports sit up to half
// a layer off the grid, unlike a fresh slice.
if (m_belt_floor_z_shift_cache_valid)
m_belt_floor_z_shift_cached += delta;
m_belt_global_z_offset += delta;
}
// Belt mode: drop layers strictly above z (used to cancel the purge prism early
// once there are no more toolchanges above z, so the tower stops at the last
// color swap instead of wasting filament up the rest of the belt). Each layer's
// cross-section is already sliced, so removing upper layers does not affect the
// last toolchange's coverage. Deletes the Layer objects and clears the new top
// layer's upper-layer link. Returns the number of layers removed.
size_t PrintObject::belt_truncate_layers_above(coordf_t z)
{
// A repeated plan always starts from the restored full layer set.
assert(m_belt_truncated_layers.empty());
size_t keep = m_layers.size();
while (keep > 0 && m_layers[keep - 1]->print_z > z + EPSILON)
--keep;
if (keep >= m_layers.size())
return 0;
const size_t removed = m_layers.size() - keep;
m_belt_truncated_layers.assign(m_layers.begin() + keep, m_layers.end());
m_layers.resize(keep);
if (!m_layers.empty())
m_layers.back()->upper_layer = nullptr;
return removed;
}
// Plastic saving on the purge prism: keep only the fills a toolchange claimed.
//
// Called per layer from _plan_belt_purge(), after the real-purge marking and
// BEFORE ensure_perimeters_infills_order() -- that pass force-overrides every
// remaining fill on the prism (it is a dedicated flush object), so afterwards
// everything looks claimed and nothing could be distinguished.
size_t PrintObject::belt_drop_unclaimed_fills(Layer *layer, const std::function<bool(const ExtrusionEntity*)> &claimed)
{
if (layer == nullptr)
return 0;
size_t dropped = 0;
for (size_t ri = 0; ri < layer->regions().size(); ++ri) {
LayerRegion *lr = layer->get_region(ri);
auto &ents = lr->fills.entities;
ExtrusionEntitiesPtr keep;
keep.reserve(ents.size());
for (size_t i = 0; i < ents.size(); ++i) {
if (claimed(ents[i])) {
keep.emplace_back(ents[i]);
} else {
// Stash with its original index so the restore is exact.
m_belt_dropped_fills.push_back(BeltDroppedFill{ layer, ri, i, ents[i] });
++dropped;
}
}
ents = std::move(keep);
}
return dropped;
}
void PrintObject::belt_restore_dropped_fills()
{
if (m_belt_dropped_fills.empty())
return;
// Ascending index per (layer, region): inserting in that order lands every
// entity back at its original position, because each insertion shifts only
// the entries after it, which are themselves still to be inserted.
std::stable_sort(m_belt_dropped_fills.begin(), m_belt_dropped_fills.end(),
[](const BeltDroppedFill &a, const BeltDroppedFill &b) {
if (a.layer != b.layer) return a.layer < b.layer;
if (a.region_idx != b.region_idx) return a.region_idx < b.region_idx;
return a.index < b.index;
});
for (const BeltDroppedFill &d : m_belt_dropped_fills) {
auto &ents = d.layer->get_region(d.region_idx)->fills.entities;
ents.insert(ents.begin() + std::min(d.index, ents.size()), d.entity);
}
m_belt_dropped_fills.clear();
}
void PrintObject::belt_restore_truncated_layers()
{
if (m_belt_truncated_layers.empty())
return;
m_layers.insert(m_layers.end(), m_belt_truncated_layers.begin(), m_belt_truncated_layers.end());
m_belt_truncated_layers.clear();
for (size_t i = 0; i < m_layers.size(); ++i) {
m_layers[i]->lower_layer = i == 0 ? nullptr : m_layers[i - 1];
m_layers[i]->upper_layer = i + 1 < m_layers.size() ? m_layers[i + 1] : nullptr;
}
}
} // namespace Slic3r
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#include "BeltSliceStrategy.hpp"
#include "Model.hpp"
#include "BeltTransform.hpp"
#include "Point.hpp"
#include "PrintConfig.hpp"
#include <limits>
#include <algorithm>
namespace Slic3r {
void BeltSliceStrategy::apply_preslice_transforms(Transform3d &trafo,
const PrintConfig &config,
const ModelVolumePtrs &model_volumes,
double *out_belt_min_z)
{
// 1. Belt rotation — the sole mesh-side belt transform (matching
// BeltTransformPipeline::build_forward_transform). Only active in
// belt-printer mode.
bool has_rotation = false;
if (config.belt_printer.value) {
const Matrix3d rot = BeltTransformPipeline::build_rotation_matrix(config, &has_rotation);
if (has_rotation) {
Transform3d belt_xform = Transform3d::Identity();
belt_xform.linear() = rot;
trafo = belt_xform * trafo;
}
}
if (!has_rotation)
return;
// 2. Z-shift — detect if the mesh clips below the build plate after the
// transforms and lift it. Each mesh vertex must be brought into object space
// via mv->get_matrix() before applying the full trafo (which is in object
// space). Missing this on assemblies (where per-volume get_matrix() positions
// each volume within the object) would compute min_z against mesh-local vertex
// coordinates rather than object-space coordinates, so volumes translated along
// the slicer's Z axis would be silently excluded from the bound check.
//
// The lift is measured to the lowest point of the SUPPORT region, not of the
// mesh: the belt floor (z = shear * u in this rotated frame, u the from-axis
// coordinate) runs below every vertex, and under the leading end of an
// overhang it lies below the lowest vertex by up to the overhang's length
// times the shear. Supports have to reach that floor, and every support
// generator works in layers at z >= 0, so z = 0 has to be the lowest floor
// point under the footprint. The layers between it and the first vertex
// come out empty, which belt slicing already tolerates (the bottom corner
// of a tilted part is a point). Vertices on the belt have z == floor, so
// for a part resting on the belt this is simply the floor at its leading
// extreme, less the frame margin (see BeltTransformPipeline::frame_margin).
BeltTransformPipeline::BeltFloorParams floor;
const bool has_floor = BeltTransformPipeline::floor_shear(config, floor);
double min_z = std::numeric_limits<double>::max();
for (const ModelVolume *mv : model_volumes) {
if (!mv->is_model_part()) continue;
Transform3d vol_trafo = trafo * mv->get_matrix();
const auto &its = mv->mesh().its;
for (const stl_vertex &v : its.vertices) {
Vec3d vm = v.cast<double>();
Vec3d pt = vol_trafo * vm;
min_z = std::min(min_z, pt.z());
if (has_floor)
min_z = std::min(min_z, floor.shear_factor * (floor.from_axis == 0 ? pt.x() : pt.y()));
}
}
if (has_floor && min_z != std::numeric_limits<double>::max())
min_z -= BeltTransformPipeline::frame_margin(floor);
const double z_shift_val = (min_z < 0. && min_z != std::numeric_limits<double>::max()) ? -min_z : 0.;
if (z_shift_val > 0.) {
Transform3d z_shift = Transform3d::Identity();
z_shift.matrix()(2, 3) = z_shift_val;
trafo = z_shift * trafo;
}
// out_belt_min_z is only meaningful in belt mode.
if (out_belt_min_z && config.belt_printer.value) {
*out_belt_min_z = (min_z != std::numeric_limits<double>::max()) ? min_z : 0.;
}
}
} // namespace Slic3r
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#pragma once
#include "libslic3r.h"
#include "Point.hpp"
#include "BeltTransform.hpp"
#include "PrintConfig.hpp"
#include "Model.hpp"
namespace Slic3r {
// Belt printer pre-slice transform strategy.
//
// Composes, in order, the mesh transforms applied before slicing on a belt printer:
// 1. Belt rotation (the sole mesh-side belt transform; shear & scale are a
// g-code-side stage, see MachineFrameTransform)
// 2. Per-object Z-shift that lifts the mesh so its slicing frame starts at the
// belt below its footprint
//
// Isolates this belt-specific logic from the generic slicing pipeline in
// PrintObjectSlice.cpp.
class BeltSliceStrategy
{
public:
// Apply the belt rotation + Z-shift to `trafo` in place. No-op when no belt
// rotation is configured.
//
// out_belt_min_z (if non-null) receives the minimum mesh Z after the transforms.
static void apply_preslice_transforms(Transform3d &trafo,
const PrintConfig &config,
const ModelVolumePtrs &model_volumes,
double *out_belt_min_z = nullptr);
};
} // namespace Slic3r
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#include "BeltTransform.hpp"
#include "Model.hpp"
#include "BoundingBox.hpp"
#include "Config.hpp"
#include "Geometry.hpp"
#include "Point.hpp"
#include "PrintConfig.hpp"
#include "libslic3r.h"
#include <limits>
#include <algorithm>
#include <cmath>
#include <cstdlib>
namespace Slic3r {
// ---- Matrix builders ------------------------------------------------------
Matrix3d BeltTransformPipeline::build_rotation_matrix(const PrintConfig &config, bool *has_rot_out)
{
BeltRotationAxis axis = config.belt_slice_rotation.value;
double angle_deg = config.belt_slice_rotation_angle.value;
bool active = axis != BeltRotationAxis::None && std::abs(angle_deg) > EPSILON;
if (has_rot_out) *has_rot_out = active;
if (!active)
return Matrix3d::Identity();
double angle_rad = Geometry::deg2rad(angle_deg);
Vec3d unit_axis;
switch (axis) {
case BeltRotationAxis::X: unit_axis = Vec3d::UnitX(); break;
case BeltRotationAxis::Y: unit_axis = Vec3d::UnitY(); break;
case BeltRotationAxis::Z: unit_axis = Vec3d::UnitZ(); break;
default: return Matrix3d::Identity();
}
return Eigen::AngleAxisd(angle_rad, unit_axis).toRotationMatrix();
}
Transform3d BeltTransformPipeline::build_forward_transform(const PrintConfig &config)
{
// Mesh-side belt transform: the rotation. (Shear & scale are a g-code-side
// stage, not part of the mesh transform.)
Transform3d combined = Transform3d::Identity();
combined.linear() = build_rotation_matrix(config);
return combined;
}
// ---- Belt floor parameters ------------------------------------------------
namespace {
// Belt floor in the rotated slicer frame: the image of z_machine = 0 under R.
// R(+α, X): point (·, y, 0) → (·, cos α · y, sin α · y) ⇒ z = tan(α) · y_s
// R(+α, Y): point (x, ·, 0) → (cos α · x, ·, -sin α · x) ⇒ z = -tan(α) · x_s
// R(+α, Z): point (·, ·, 0) → (·, ·, 0); no tilt → no floor
void belt_floor_shear(BeltRotationAxis rot_axis, double angle_rad, BeltTransformPipeline::BeltFloorParams &out)
{
double sin_a = std::sin(angle_rad), cos_a = std::cos(angle_rad);
switch (rot_axis) {
case BeltRotationAxis::X:
out.shear_factor = (std::abs(cos_a) > EPSILON) ? sin_a / cos_a : 0.;
out.from_axis = 1; // Y
break;
case BeltRotationAxis::Y:
out.shear_factor = (std::abs(cos_a) > EPSILON) ? -sin_a / cos_a : 0.;
out.from_axis = 0; // X
break;
case BeltRotationAxis::Z:
default:
out.shear_factor = 0.0;
out.from_axis = 1;
break;
}
}
// Z of the belt floor directly under a point of the rotated (unshifted) frame.
inline double belt_floor_z(const BeltTransformPipeline::BeltFloorParams &fp, const Vec3d &pt)
{
return fp.shear_factor * (fp.from_axis == 0 ? pt.x() : pt.y());
}
BeltTransformPipeline::BeltHeightResult compute_belt_height_and_floor_impl(
const PrintConfig &config, const BoundingBoxf3 &bb, double original_height)
{
BeltTransformPipeline::BeltHeightResult result;
result.object_height = original_height;
// The mesh rotation (the sole mesh-side belt transform).
const BeltRotationAxis rot_axis = config.belt_slice_rotation.value;
const double rot_angle = config.belt_slice_rotation_angle.value;
bool has_rotation = rot_axis != BeltRotationAxis::None && std::abs(rot_angle) > EPSILON;
if (!has_rotation)
return result;
// Rotation path: sweep the 8 bbox corners through R to get the rotated height,
// then derive the belt floor (the image of machine-Z = 0 under R).
double angle_rad = Geometry::deg2rad(rot_angle);
Vec3d unit_axis;
switch (rot_axis) {
case BeltRotationAxis::X: unit_axis = Vec3d::UnitX(); break;
case BeltRotationAxis::Y: unit_axis = Vec3d::UnitY(); break;
case BeltRotationAxis::Z: unit_axis = Vec3d::UnitZ(); break;
default: unit_axis = Vec3d::UnitX(); break;
}
Matrix3d R = Eigen::AngleAxisd(angle_rad, unit_axis).toRotationMatrix();
belt_floor_shear(rot_axis, angle_rad, result.floor_params);
// The slicing frame starts at the lowest point of the support region: the
// lowest belt-floor point under the footprint, not the lowest vertex. The
// belt under the leading end of an overhang lies below every vertex of the
// part, and supports have to be able to reach it (see
// BeltSliceStrategy::apply_preslice_transforms for the exact vertex-scan
// counterpart of this bbox estimate).
double min_rz = std::numeric_limits<double>::max();
double max_rz = std::numeric_limits<double>::lowest();
for (int i = 0; i < 8; ++i) {
Vec3d c((i & 1) ? bb.max.x() : bb.min.x(),
(i & 2) ? bb.max.y() : bb.min.y(),
(i & 4) ? bb.max.z() : bb.min.z());
Vec3d rc = R * c;
double z = rc.z();
min_rz = std::min(min_rz, z);
max_rz = std::max(max_rz, z);
min_rz = std::min(min_rz, belt_floor_z(result.floor_params, rc));
}
min_rz -= BeltTransformPipeline::frame_margin(result.floor_params);
result.object_height = max_rz - min_rz;
result.floor_params.z_shift = bb.min.z() + ((min_rz < 0.) ? -min_rz : 0.);
return result;
}
} // anonymous namespace
BeltTransformPipeline::BeltHeightResult BeltTransformPipeline::compute_belt_height_and_floor(
const PrintConfig &config, const BoundingBoxf3 &bbox, double original_height)
{
return compute_belt_height_and_floor_impl(config, bbox, original_height);
}
bool BeltTransformPipeline::floor_shear(const PrintConfig &config, BeltFloorParams &out)
{
out = BeltFloorParams{};
const BeltRotationAxis rot_axis = config.belt_slice_rotation.value;
const double rot_angle = config.belt_slice_rotation_angle.value;
if (rot_axis == BeltRotationAxis::None || std::abs(rot_angle) <= EPSILON)
return false;
belt_floor_shear(rot_axis, Geometry::deg2rad(rot_angle), out);
return std::abs(out.shear_factor) > EPSILON;
}
} // namespace Slic3r
-132
View File
@@ -1,132 +0,0 @@
#pragma once
#include "libslic3r.h"
#include "Point.hpp"
#include "BoundingBox.hpp"
#include "PrintConfig.hpp"
#include "Geometry.hpp"
#include "Config.hpp"
#include <cmath>
namespace Slic3r {
class ModelObject;
// Shared belt-printer transform math.
//
// The pre-slice pipeline applied in PrintObjectSlice.cpp is:
// trafo_out = z_shift * rotation * trafo_in
//
// Rotation is the sole mesh-side belt transform; shear & scale are applied
// to the g-code instead (see MachineFrameTransform). This class provides the
// building blocks so every call site uses the same implementation. z_shift is
// object-dependent (computed from mesh vertex bounds) and is NOT included in
// build_forward_transform(). The machine-frame shear/scale is derived directly
// from the tilt angle in MachineFrameTransform and no longer lives here.
//
// Design note: this mesh-rotation approach replaced an earlier pre-shear
// method (now removed). While that initial pre-shear method was instrumental
// in getting belt printer slicing off the ground in the first place, its place is
// in the past. A big thank you goes to the Unlayered3D team, who recommended
// switching to a pre-slice rotation stage instead. Doing so keeps the slicing
// operation isometric — no distortion of the sliced geometry — while the
// non-orthogonal machine-axis compensation is confined to a g-code-side shear/scale
// derived from the same tilt angle.
//
// This fixed a number of issues, including several issues noticed by hotcubcar
// regarding adaptive infills not working, gyroid becoming anisotropic, and more
// that were all mostly resolved as a result of the switch.
//
// This also means that the pre-slice rotation transform methodology can be used
// more cleanly on non-belt printers.
// - HarrierPigeon (Joseph Robertson)
class BeltTransformPipeline
{
public:
// ---- Identity checks --------------------------------------------------
// Whether the G-code axis remap applies at all. The remap fields are only
// offered in the belt printer group, so a value left in a profile must not
// change a non-belt print: with belt mode off every belt-only key is a no-op.
// This is the one place to widen if a non-belt use ever needs them.
static bool axis_remap_enabled(const PrintConfig &config) { return config.belt_printer.value; }
static bool has_rotation(const PrintConfig &config)
{
return config.belt_slice_rotation.value != BeltRotationAxis::None &&
std::abs(config.belt_slice_rotation_angle.value) > EPSILON;
}
// Physical belt tilt derived from the slicing rotation — the single source of
// truth for bed rendering, support gravity tilt and the bed-exclusion
// projection. Returns the tilt magnitude in degrees split onto the X and Y
// build-plate tilt axes according to the rotation axis:
// rotation about X → tilt_x = angle (gantry tilts in the YZ plane)
// rotation about Y → tilt_y = angle (gantry tilts in the XZ plane)
// rotation about Z / None → no tilt (in-plane spin doesn't tilt the belt)
// The magnitude uses abs(angle) so a negative rotation still reports a positive
// physical tilt.
struct PhysicalTilt { double tilt_x_deg = 0.; double tilt_y_deg = 0.; };
static PhysicalTilt physical_tilt(BeltRotationAxis axis, double angle_deg)
{
PhysicalTilt t;
double mag = std::abs(angle_deg);
switch (axis) {
case BeltRotationAxis::X: t.tilt_x_deg = mag; break;
case BeltRotationAxis::Y: t.tilt_y_deg = mag; break;
default: break; // Z / None: no physical tilt
}
return t;
}
// ---- Matrix builders --------------------------------------------------
// Build the 3x3 rotation matrix from belt_slice_rotation* config.
// Returns Identity if rotation axis is None or angle is ~0.
// Also sets has_rot_out if non-null.
static Matrix3d build_rotation_matrix(const PrintConfig &config, bool *has_rot_out = nullptr);
// Forward transform (the rotation) — the mesh-side belt transform that
// BeltSliceStrategy applies and BeltBackTransform inverts.
// Does NOT include the per-object Z-shift.
static Transform3d build_forward_transform(const PrintConfig &config);
// ---- Belt floor parameters --------------------------------------------
struct BeltFloorParams {
double shear_factor = 0.0;
int from_axis = 1;
double z_shift = 0.0;
};
// Shear factor and from-axis of the belt floor in the rotated slicer frame
// (z_floor = shear_factor * u, u = the from-axis coordinate), for the
// rotation the config selects. z_shift is left at 0. Returns false (and
// zero shear) when the config has no tilt.
static bool floor_shear(const PrintConfig &config, BeltFloorParams &out);
// How far below the lowest belt-floor point under the footprint the slicing
// frame starts, in slicing Z. A support column meeting the belt is wider at
// its base than at its tip, so under a leading overhang the base reaches ahead
// of the part along the belt, and the layers that trim it to the belt plane
// lie below that lowest point: 10 mm along the belt.
static double frame_margin(const BeltFloorParams &fp) { return 10. * std::abs(fp.shear_factor); }
// Result of computing belt height + floor params.
struct BeltHeightResult {
double object_height; // Effective object height after shear/scale
BeltFloorParams floor_params;
};
// Compute effective object height and belt floor parameters from config
// and the object's bounding box. original_height is the input height
// (bb.size().z() or model_object.max_z()).
static BeltHeightResult compute_belt_height_and_floor(
const PrintConfig &config, const BoundingBoxf3 &bbox,
double original_height);
};
} // namespace Slic3r
+1 -14
View File
@@ -474,9 +474,7 @@ static ExPolygons outer_inner_brim_area(const Print& print,
const bool use_brim_ears = object->config().brim_type == btPainted;
const bool use_inner_brim_ears = (use_auto_brim_ears || use_brim_ears) && !object->config().brim_ears_outer_only.value;
const bool has_inner_brim = brim_type == btInnerOnly || brim_type == btOuterAndInner || use_inner_brim_ears;
// btLeadingEdgeOnly is a belt-printer mode; on a flat bed there is no leading
// edge, so it degrades to an ordinary outer brim rather than silently to none.
const bool has_outer_brim = brim_type == btOuterOnly || brim_type == btOuterAndInner || brim_type == btAutoBrim || brim_type == btLeadingEdgeOnly || use_auto_brim_ears || use_brim_ears;
const bool has_outer_brim = brim_type == btOuterOnly || brim_type == btOuterAndInner || brim_type == btAutoBrim || use_auto_brim_ears || use_brim_ears;
coord_t ear_detection_length = scale_(object->config().brim_ears_detection_length.value);
coordf_t brim_ears_max_angle = object->config().brim_ears_max_angle.value;
//ORCA: Select brim base slices from EFC-compensated outline when enabled.
@@ -891,17 +889,6 @@ void make_brim(const Print& print, PrintTryCancel try_cancel, Polygons& islands_
std::vector<unsigned int>& printExtruders,
std::map<ObjectInstanceID, ExPolygons>* objectBrimAreasByInstanceOut)
{
// Belt printers never use the flat plate brim.
//
// With a tilted belt the brim has to be laid onto the belt plane over many layers,
// which BeltBrim.cpp does during posSupportMaterial. With an untilted belt this
// could in principle fall through and produce an ordinary brim, but it would never
// reach the G-code: the plate brim is emitted out of skirt_brim_groups(), which
// _make_skirt() builds, and that returns early for every belt printer. Running the
// generator anyway would just burn time on geometry nobody prints.
if (print.config().belt_printer.value)
return;
std::map<ObjectInstanceID, ExPolygons> brimAreaMap;
Flow flow = print.brim_flow();
ExPolygons islands_area_ex = outer_inner_brim_area(print,
+1 -1
View File
@@ -84,7 +84,7 @@ public:
indexed_triangle_set bounding_mesh(bool scale=true) const;
// Center of the print bed, unscaled.
Vec2d bed_center() const { return get_extents(m_bed_shape).center(); }
Vec2d bed_center() const { return to_2d(m_bboxf.center()); }
// Convex hull of polygon(), scaled.
const Polygon& convex_hull() const { return m_convex_hull; }
// Smallest enclosing circle of polygon(), scaled.
+1
View File
@@ -84,6 +84,7 @@
#include <cmath>
#include <cctype>
#include <cstdio>
#include <functional>
#include <gp_XY.hxx>
#include <initializer_list>
#include <math.h>
+3 -19
View File
@@ -85,15 +85,6 @@ set(lisbslic3r_sources
BoundingBox.hpp
BridgeDetector.cpp
BridgeDetector.hpp
BeltBrim.cpp
BeltBrim.hpp
BeltGCode.cpp
BeltGCode.hpp
BeltPurge.cpp
BeltSliceStrategy.cpp
BeltSliceStrategy.hpp
BeltTransform.cpp
BeltTransform.hpp
Brim.cpp
BrimEarsPoint.hpp
Brim.hpp
@@ -241,14 +232,6 @@ set(lisbslic3r_sources
GCode/AdaptivePAProcessor.hpp
GCode/AvoidCrossingPerimeters.cpp
GCode/AvoidCrossingPerimeters.hpp
GCode/BeltBackTransform.cpp
GCode/BeltBackTransform.hpp
GCode/MachineFrameTransform.cpp
GCode/MachineFrameTransform.hpp
GCode/BeltKinematics.cpp
GCode/BeltKinematics.hpp
GCode/MachineKinematics.cpp
GCode/MachineKinematics.hpp
GCode/ConflictChecker.cpp
GCode/ConflictChecker.hpp
GCode/CoolingBuffer.cpp
@@ -278,6 +261,8 @@ set(lisbslic3r_sources
GCode/PreciseSeam.cpp
GCode/PreciseSeam.hpp
GCode/PreciseSeamInternal.hpp
#GCodeSender.cpp
#GCodeSender.hpp
GCode/SmallAreaInfillFlowCompensator.cpp
GCode/SmallAreaInfillFlowCompensator.hpp
GCode/SpiralVase.cpp
@@ -462,6 +447,7 @@ set(lisbslic3r_sources
SLA/SupportTreeBuildsteps.hpp
SLA/SupportTree.cpp
SLA/SupportTree.hpp
#SLA/SupportTreeIGL.cpp
SLA/SupportTreeMesher.cpp
SLA/SupportTreeMesher.hpp
SlicesToTriangleMesh.cpp
@@ -470,8 +456,6 @@ set(lisbslic3r_sources
SlicingAdaptive.hpp
Slicing.cpp
Slicing.hpp
Support/BeltFloorContext.cpp
Support/BeltFloorContext.hpp
Support/SupportCommon.cpp
Support/SupportCommon.hpp
Support/SupportLayer.hpp
+1
View File
@@ -2589,6 +2589,7 @@ void priv::create_face_types(FaceTypeMap &map,
}
#include <CGAL/Polygon_mesh_processing/clip.h>
#include <CGAL/Polygon_mesh_processing/corefinement.h>
bool priv::clip_cut(SurfacePatch &cut, CutMesh clipper)
{
CutMesh& tm = cut.mesh;
+1
View File
@@ -15,6 +15,7 @@
#include "Emboss.hpp"
#include <optional>
#include <stdio.h>
#include <numeric>
#include <cstdlib>
#include <boost/nowide/convert.hpp>
#include <boost/log/trivial.hpp>
-5
View File
@@ -403,11 +403,6 @@ inline void translate(ExPolygons &expolys, const Point &p) {
expoly.translate(p);
}
inline void translate(Polygons &polys, const Point &p) {
for (Polygon &poly : polys)
poly.translate(p);
}
inline void polygons_append(Polygons &dst, const ExPolygon &src)
{
dst.reserve(dst.size() + src.holes.size() + 1);
+25 -31
View File
@@ -29,7 +29,6 @@
#include "ExtrusionEntity.hpp"
#include "Fill.hpp"
#include "libslic3r/Fill/FillBase.hpp"
#include "FillAdaptive.hpp"
#include "FillRectilinear.hpp"
#include "FillLightning.hpp"
#include "FillConcentricInternal.hpp"
@@ -927,6 +926,7 @@ std::vector<SurfaceFill> group_fills(const Layer &layer, LockRegionParam &lock_p
params.lateral_lattice_angle_2 = region_config.lateral_lattice_angle_2;
params.infill_overhang_angle = region_config.infill_overhang_angle;
params.center_of_surface_pattern = region_config.center_of_surface_pattern;
params.separated_infills = region_config.separated_infills;
if (params.pattern == ipLockedZag) {
params.infill_lock_depth = scale_(region_config.infill_lock_depth);
params.skin_infill_depth = scale_(region_config.skin_infill_depth);
@@ -999,9 +999,6 @@ std::vector<SurfaceFill> group_fills(const Layer &layer, LockRegionParam &lock_p
// (which would unnecessarily split fill batching).
// Stored on SurfaceFillParams; copied to FillParams during conversion.
params.gyroid_optimized = (params.pattern == ipGyroid) && region_config.gyroid_optimized;
// Orca: Likewise separated_infills only where it can move the pattern.
params.separated_infills = region_config.separated_infills && is_separable_infill_pattern(params.pattern) &&
params.extrusion_role != erTopSolidInfill && params.extrusion_role != erBottomSurface;
if (params.extrusion_role == erInternalInfill) {
params.angle = calculate_infill_rotation_angle(layer.object(), layer.id(), region_config.infill_direction.value,
@@ -1076,7 +1073,7 @@ std::vector<SurfaceFill> group_fills(const Layer &layer, LockRegionParam &lock_p
//get locked region param
if (params.pattern == ipLockedZag){
const PrintObject *object = layerm.layer()->object();
auto nozzle_diameter = float(nozzle_diameter_for_filament(object->print()->config(), layerm.region().extruder(extrusion_role), object->print()->is_BBL_printer()));
auto nozzle_diameter = float(object->print()->config().nozzle_diameter.get_at(layerm.region().extruder(extrusion_role) - 1));
Flow skin_flow = params.bridge ? params.flow : Flow::new_from_config_width(extrusion_role, region_config.skin_infill_line_width, nozzle_diameter, float((surface.thickness == -1) ? layer.height : surface.thickness));
//add skin flow
append_flow_param(lock_param.skin_flow_params, skin_flow, surface.expolygon);
@@ -1274,28 +1271,29 @@ std::vector<SurfaceFill> group_fills(const Layer &layer, LockRegionParam &lock_p
// Orca: Anchors and printed infill must share the same body origin. Keep the choice
// here so per-model surface centering and separated sparse infill cannot drift apart.
// Returns the connected body the fill region is laid out on, or -1 to keep the object's origin.
static int infill_body(const Layer &layer, const SurfaceFill &fill, const ExPolygon &expoly)
static BoundingBox infill_bounding_box(const Layer &layer, const SurfaceFill &fill, const ExPolygon &expoly, BoundingBox bbox)
{
const auto &params = fill.params;
const bool per_model = (params.extrusion_role == erTopSolidInfill || params.extrusion_role == erBottomSurface) &&
params.center_of_surface_pattern == CenterOfSurfacePattern::Each_Model &&
const auto &config = layer.regions()[fill.region_id]->region().config();
const bool external = params.extrusion_role == erTopSolidInfill || params.extrusion_role == erBottomSurface;
const bool per_model = external && params.center_of_surface_pattern == CenterOfSurfacePattern::Each_Model &&
(params.pattern == ipArchimedeanChords || params.pattern == ipOctagramSpiral);
int body = -1;
if (per_model || params.separated_infills || is_octree_infill_pattern(params.pattern)) {
const BoundingBox box = get_extents(expoly);
double best_overlap = 0.;
for (size_t i = 0; i < layer.lslices.size() && i < layer.lslices_separated_component_ids.size(); ++i) {
if (! layer.lslices_bboxes[i].overlap(box))
continue;
const bool separate = !external && params.separated_infills &&
(is_separable_infill_pattern(params.pattern) || !config.solid_infill_rotate_template.value.empty() ||
!config.sparse_infill_rotate_template.value.empty());
if (per_model || separate) {
double best_overlap = 0.;
for (size_t i = 0; i < layer.lslices.size() && i < layer.lslices_separated_component_bboxes.size(); ++i) {
const double overlap = area(intersection_ex(layer.lslices[i], expoly));
if (overlap > best_overlap) {
best_overlap = overlap;
body = int(layer.lslices_separated_component_ids[i]);
const Point center = layer.lslices_separated_component_bboxes[i].center();
bbox = layer.object()->bounding_box();
bbox.translate(center.x(), center.y());
}
}
}
return body;
return bbox;
}
#ifdef SLIC3R_DEBUG_SLICE_PROCESSING
@@ -1320,7 +1318,7 @@ void export_group_fills_to_svg(const char *path, const std::vector<SurfaceFill>
#endif
// friend to Layer
void Layer::make_fills(const FillAdaptive::Octrees* adaptive_fill_octrees, const FillAdaptive::Octrees* support_fill_octrees, FillLightning::Generator* lightning_generator)
void Layer::make_fills(FillAdaptive::Octree* adaptive_fill_octree, FillAdaptive::Octree* support_fill_octree, FillLightning::Generator* lightning_generator)
{
for (LayerRegion *layerm : m_regions)
layerm->fills.clear();
@@ -1353,7 +1351,7 @@ void Layer::make_fills(const FillAdaptive::Octrees* adaptive_fill_octrees, const
f->z = this->print_z;
f->angle = surface_fill.params.angle;
f->fixed_angle = surface_fill.params.fixed_angle;
const FillAdaptive::Octrees *octrees = surface_fill.params.pattern == ipSupportCubic ? support_fill_octrees : adaptive_fill_octrees;
f->adapt_fill_octree = (surface_fill.params.pattern == ipSupportCubic) ? support_fill_octree : adaptive_fill_octree;
f->print_config = &this->object()->print()->config();
f->print_object_config = &this->object()->config();
if (surface_fill.params.pattern == ipConcentricInternal) {
@@ -1445,10 +1443,8 @@ void Layer::make_fills(const FillAdaptive::Octrees* adaptive_fill_octrees, const
params.can_reverse = false;
for (ExPolygon& expoly : surface_fill.expolygons) {
// Orca: Reuse the body box and octree used for bridge anchoring, resetting them for each surface.
const int body = infill_body(*this, surface_fill, expoly);
f->set_bounding_box(body >= 0 ? this->object()->separated_body_bboxes()[body] : bbox);
f->adapt_fill_octree = octrees ? octrees->get(body) : nullptr;
// Orca: Reuse the body origin used for bridge anchoring, resetting it for each surface.
f->set_bounding_box(infill_bounding_box(*this, surface_fill, expoly, bbox));
f->no_overlap_expolygons = intersection_ex(surface_fill.no_overlap_expolygons, ExPolygons() = {expoly}, ApplySafetyOffset::Yes);
if (params.symmetric_infill_y_axis) {
@@ -1516,7 +1512,7 @@ void Layer::make_fills(const FillAdaptive::Octrees* adaptive_fill_octrees, const
* - For lightning/adaptive patterns, the respective generators are wired so their
* polylines match the final infill layout.
*/
Polylines Layer::generate_sparse_infill_polylines_for_anchoring(const FillAdaptive::Octrees* adaptive_fill_octrees, const FillAdaptive::Octrees* support_fill_octrees, FillLightning::Generator* lightning_generator) const
Polylines Layer::generate_sparse_infill_polylines_for_anchoring(FillAdaptive::Octree* adaptive_fill_octree, FillAdaptive::Octree* support_fill_octree, FillLightning::Generator* lightning_generator) const
{
LockRegionParam skin_inner_param;
std::vector<SurfaceFill> surface_fills = group_fills(*this, skin_inner_param);
@@ -1574,7 +1570,7 @@ Polylines Layer::generate_sparse_infill_polylines_for_anchoring(const FillAdapti
f->z = this->print_z;
f->angle = surface_fill.params.angle;
f->fixed_angle = surface_fill.params.fixed_angle;
const FillAdaptive::Octrees *octrees = surface_fill.params.pattern == ipSupportCubic ? support_fill_octrees : adaptive_fill_octrees;
f->adapt_fill_octree = (surface_fill.params.pattern == ipSupportCubic) ? support_fill_octree : adaptive_fill_octree;
f->print_config = &this->object()->print()->config();
f->print_object_config = &this->object()->config();
@@ -1621,10 +1617,8 @@ Polylines Layer::generate_sparse_infill_polylines_for_anchoring(const FillAdapti
params.extrusion_role = surface_fill.params.extrusion_role;
for (ExPolygon &expoly : surface_fill.expolygons) {
// Orca: Match the per-body box and octree of make_fills() before generating physical anchors.
const int body = infill_body(*this, surface_fill, expoly);
f->set_bounding_box(body >= 0 ? this->object()->separated_body_bboxes()[body] : bbox);
f->adapt_fill_octree = octrees ? octrees->get(body) : nullptr;
// Orca: Match the per-body origin of make_fills() before generating physical anchors.
f->set_bounding_box(infill_bounding_box(*this, surface_fill, expoly, bbox));
// Spacing is modified by the filler to indicate adjustments. Reset it for each expolygon.
f->spacing = surface_fill.params.spacing;
surface_fill.surface.expolygon = std::move(expoly);
@@ -1794,7 +1788,7 @@ void Layer::make_ironing()
// Create the ironing extrusions for regions <i, j)
ExPolygons ironing_areas;
double nozzle_dmr = nozzle_diameter_for_filament(this->object()->print()->config(), ironing_params.extruder, this->object()->print()->is_BBL_printer());
double nozzle_dmr = this->object()->print()->config().nozzle_diameter.get_at(ironing_params.extruder - 1);
if (ironing_params.just_infill) {
//TODO just_infill is currently not used.
// Just infill.
-1
View File
@@ -25,7 +25,6 @@ public:
// pattern is placed on top of previous layers
bool use_bridge_flow() const override { return false; }
bool is_self_crossing() override { return false; }
bool aligned_to_origin() const override { return true; }
protected:
void _fill_surface_single(
-22
View File
@@ -14,7 +14,6 @@
#include "libslic3r/BoundingBox.hpp"
#include "libslic3r/ExPolygon.hpp"
#include "FillBase.hpp"
#include <cstddef>
#include <memory>
#include <utility>
#include <Eigen/Geometry>
@@ -38,27 +37,6 @@ struct Octree;
struct OctreeDeleter { void operator()(Octree *p); };
using OctreePtr = std::unique_ptr<Octree, OctreeDeleter>;
// Orca: One octree per body (see Layer::lslices_separated_component_ids), and one of the whole object
// for objects of a single body or with a body that has none of its own.
struct Octrees
{
OctreePtr object;
std::vector<OctreePtr> bodies;
// A body without an octree, or body -1, uses the object's, or any body's when the object has none.
Octree *get(int body) const
{
if (body >= 0 && size_t(body) < bodies.size() && bodies[body])
return bodies[body].get();
if (object)
return object.get();
for (const OctreePtr &octree : bodies)
if (octree)
return octree.get();
return nullptr;
}
};
// Calculate line spacing for
// 1) adaptive cubic infill
// 2) adaptive internal support cubic infill
+2 -12
View File
@@ -128,9 +128,6 @@ Polylines Fill::fill_surface(const Surface *surface, const FillParams &params)
{
// Perform offset.
Slic3r::ExPolygons expp = offset_ex(surface->expolygon, float(scale_(this->overlap - 0.5 * this->spacing)));
// Orca: Separated infills move the box center onto each body; origin-aligned patterns follow it.
const Point shift = this->aligned_to_origin() && ! empty(this->bounding_box) ? this->bounding_box.center() : Point::Zero();
translate(expp, -shift);
// Create the infills for each of the regions.
Polylines polylines_out;
for (size_t i = 0; i < expp.size(); ++ i)
@@ -140,8 +137,6 @@ Polylines Fill::fill_surface(const Surface *surface, const FillParams &params)
_infill_direction(surface),
std::move(expp[i]),
polylines_out);
for (Polyline &pl : polylines_out)
pl.translate(shift);
return polylines_out;
}
@@ -1596,18 +1591,13 @@ BoundaryInfillGraph create_boundary_infill_graph(const Polylines &infill_ordered
// The extended bounding box of the whole object that covers any rotation of every layer.
BoundingBox Fill::extended_object_bounding_box() const
{
// Orca: Extend about the box center, which separated infills move off the origin.
const Point c = this->bounding_box.center();
BoundingBox out = this->bounding_box;
out.translate(-c.x(), -c.y());
BoundingBox out = bounding_box;
out.merge(Point(out.min.y(), out.min.x()));
out.merge(Point(out.max.y(), out.max.x()));
// The bounding box is scaled by sqrt(2.) to ensure that the bounding box
// covers any possible rotations.
out = out.scaled(sqrt(2.));
out.translate(c.x(), c.y());
return out;
return out.scaled(sqrt(2.));
}
void Fill::connect_infill(Polylines &&infill_ordered, const std::vector<const Polygon*> &boundary_src, const BoundingBox &bbox, Polylines &polylines_out, const double spacing, const FillParams &params)
-3
View File
@@ -188,9 +188,6 @@ public:
// Return true if infill has a consistent pattern between layers.
virtual bool has_consistent_pattern() const { return false; }
// Orca: Is the pattern laid out from the origin instead of the bounding box center?
virtual bool aligned_to_origin() const { return false; }
// Perform the fill.
virtual Polylines fill_surface(const Surface *surface, const FillParams &params);
virtual ThickPolylines fill_surface_arachne(const Surface* surface, const FillParams& params);
-1
View File
@@ -19,7 +19,6 @@ public:
Fill *clone() const override { return new FillCrossHatch(*this); };
~FillCrossHatch() override {}
bool is_self_crossing() override { return false; }
bool aligned_to_origin() const override { return true; }
protected:
void _fill_surface_single(
-1
View File
@@ -20,7 +20,6 @@ public:
// require bridge flow since most of this pattern hangs in air
bool use_bridge_flow() const override { return false; }
bool is_self_crossing() override { return false; }
bool aligned_to_origin() const override { return true; }
// Correction applied to regular infill angle to maximize printing
// speed in default configuration (degrees)
-1
View File
@@ -20,7 +20,6 @@ class FillHoneycomb : public Fill
public:
~FillHoneycomb() override {}
bool is_self_crossing() override { return false; }
bool aligned_to_origin() const override { return true; }
protected:
Fill* clone() const override { return new FillHoneycomb(*this); };
+18 -7
View File
@@ -2750,6 +2750,23 @@ static void polylines_from_paths(const std::vector<MonotonicRegionLink> &path, c
}
}
// The extended bounding box of the whole object that covers any rotation of every layer.
BoundingBox FillRectilinear::extended_object_bounding_box() const {
// Build the extension around the box center. The transpose merge and the sqrt(2.) scaling
// (which covers any possible rotation) are both defined about the origin, so a box that is not
// origin-centered — e.g. a separated-infill box re-centered on a single assembly part — would be
// distorted. Shift to the origin first and back afterwards; for the default origin-centered box
// the two translations cancel and this is identical to the original behavior.
const Point c = this->bounding_box.center();
BoundingBox out = this->bounding_box;
out.translate(-c.x(), -c.y());
out.merge(Point(out.min.y(), out.min.x()));
out.merge(Point(out.max.y(), out.max.x()));
out = out.scaled(sqrt(2.));
out.translate(c.x(), c.y());
return out;
}
bool FillRectilinear::fill_surface_by_lines(const Surface *surface, const FillParams &params, float angleBase, float pattern_shift, Polylines &polylines_out)
{
// At the end, only the new polylines will be rotated back.
@@ -2784,13 +2801,7 @@ bool FillRectilinear::fill_surface_by_lines(const Surface *surface, const FillPa
// For infill that needs to be consistent between layers (like Zig Zag),
// we use bounding box of whole object to match vertical lines between layers.
BoundingBox bounding_box_src = poly_with_offset.bounding_box_src();
BoundingBox bounding_box = bounding_box_src;
if (this->has_consistent_pattern()) {
// Orca: The polygons are rotated about the origin, so follow the box center to where it was rotated.
const Point c = this->bounding_box.center();
bounding_box = this->extended_object_bounding_box();
bounding_box.translate(c.rotated(- rotate_vector.first) - c);
}
BoundingBox bounding_box = this->has_consistent_pattern() ? this->extended_object_bounding_box() : bounding_box_src;
// define flow spacing according to requested density
if (params.full_infill() && !params.dont_adjust) {
+3
View File
@@ -42,6 +42,9 @@ protected:
};
bool fill_surface_by_multilines(const Surface *surface, FillParams params, const std::initializer_list<SweepParams> &sweep_params, Polylines &polylines_out);
bool fill_surface_trapezoidal(const Surface *surface, FillParams params, Polylines &polylines_out, int Pattern_type);
// The extended bounding box of the whole object that covers any rotation of every layer.
BoundingBox extended_object_bounding_box() const;
};
class FillAlignedRectilinear : public FillRectilinear
-1
View File
@@ -31,7 +31,6 @@ public:
Polylines& polylines_out) override;
bool is_self_crossing() override { return false; }
bool aligned_to_origin() const override { return true; }
// Density adjustment to have a good %of weight.
static constexpr double DensityAdjust = 2.1;
-1
View File
@@ -31,7 +31,6 @@ public:
Polylines& polylines_out) override;
bool is_self_crossing() override { return false; }
bool aligned_to_origin() const override { return true; }
};
+4 -4
View File
@@ -241,14 +241,14 @@ Flow support_material_flow(const PrintObject *object, float layer_height)
// The width parameter accepted by new_from_config_width is of type ConfigOptionFloatOrPercent, the Flow class takes care of the percent to value substitution.
(object->config().support_line_width.value > 0) ? object->config().support_line_width : object->config().line_width,
// if object->config().support_filament == 0 (which means to not trigger tool change, but use the current extruder instead), get_at will return the 0th component.
float(nozzle_diameter_for_filament(object->print()->config(), object->config().support_filament, object->print()->is_BBL_printer())),
float(object->print()->config().nozzle_diameter.get_at(object->config().support_filament-1)),
(layer_height > 0.f) ? layer_height : float(object->config().layer_height.value));
}
//BBS
Flow support_transition_flow(const PrintObject* object)
{
//BBS: support transition of tree support is bridge flow
float dmr = float(nozzle_diameter_for_filament(object->print()->config(), object->config().support_filament, object->print()->is_BBL_printer()));
float dmr = float(object->print()->config().nozzle_diameter.get_at(object->config().support_filament - 1));
return Flow::bridging_flow(dmr, dmr);
}
@@ -260,7 +260,7 @@ Flow support_material_1st_layer_flow(const PrintObject *object, float layer_heig
frSupportMaterial,
// The width parameter accepted by new_from_config_width is of type ConfigOptionFloatOrPercent, the Flow class takes care of the percent to value substitution.
(width.value > 0) ? width : object->config().line_width,
float(nozzle_diameter_for_filament(print_config, object->config().support_filament, object->print()->is_BBL_printer())),
float(print_config.nozzle_diameter.get_at(object->config().support_filament-1)),
(layer_height > 0.f) ? layer_height : float(print_config.initial_layer_print_height.value));
}
@@ -271,7 +271,7 @@ Flow support_material_interface_flow(const PrintObject *object, float layer_heig
// The width parameter accepted by new_from_config_width is of type ConfigOptionFloatOrPercent, the Flow class takes care of the percent to value substitution.
(object->config().support_line_width > 0) ? object->config().support_line_width : object->config().line_width,
// if object->config().support_interface_filament == 0 (which means to not trigger tool change, but use the current extruder instead), get_at will return the 0th component.
float(nozzle_diameter_for_filament(object->print()->config(), object->config().support_interface_filament, object->print()->is_BBL_printer())),
float(object->print()->config().nozzle_diameter.get_at(object->config().support_interface_filament-1)),
(layer_height > 0.f) ? layer_height : float(object->config().layer_height.value));
}
+1
View File
@@ -55,6 +55,7 @@
#include "TDataStd_Name.hxx"
#include "BRepBuilderAPI_Transform.hxx"
#include "TopExp_Explorer.hxx"
#include "TopExp_Explorer.hxx"
#include "BRep_Tool.hxx"
#include "BRepTools.hxx"
#include <IMeshTools_Parameters.hxx>

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