#include #include "test_helpers.hpp" #include #include #include #include using namespace Slic3r; using namespace Slic3r::Test; // The fan is held off for the first close_fan_the_first_x_layers layers, so an explicit // fan-off command is emitted. TEST_CASE("Fan is held off for the initial layers", "[Cooling]") { const std::string gcode = slice({ cube(20) }, { { "cooling", true }, { "close_fan_the_first_x_layers", 5 }, }); CHECK(gcode.find("M106 S0") != std::string::npos); } // The cooling pass resolves and strips its internal speed placeholders; none leak into // the final G-code. TEST_CASE("Cooling consumes its internal speed markers", "[Cooling]") { const std::string gcode = slice({ cube(20) }, { { "layer_height", 0.2 } }); CHECK(gcode.find(";_EXTRUDE_SET_SPEED") == std::string::npos); } TEST_CASE("Overhang fan transitions do not depend on overhang speed", "[Cooling][Regression]") { DynamicPrintConfig config = DynamicPrintConfig::full_print_config(); config.set_deserialize_strict({ { "bridge_speed", 2.0 }, { "enable_arc_fitting", false }, { "enable_overhang_bridge_fan", true }, { "enable_overhang_speed", false }, { "initial_layer_print_height", 0.3 }, { "inner_wall_speed", 30.0 }, { "layer_height", 0.3 }, { "outer_wall_speed", 30.0 }, { "overhang_1_4_speed", "30" }, { "overhang_2_4_speed", "29" }, { "overhang_3_4_speed", "6" }, { "overhang_4_4_speed", "3" }, { "slow_down_for_layer_cooling", false }, { "slowdown_for_curled_perimeters", false }, }); config.set_key_value("fan_max_speed", new ConfigOptionFloats{20.0}); config.set_key_value("fan_min_speed", new ConfigOptionFloats{20.0}); config.set_key_value("overhang_fan_speed", new ConfigOptionInts{100}); config.set_key_value("overhang_fan_threshold", new ConfigOptionEnumsGeneric{Overhang_threshold_2_4}); config.set_key_value("layer_change_gcode", new ConfigOptionString{";TEST_LAYER_Z=[layer_z]"}); const auto fan_commands = [](const std::string &gcode) { std::vector> commands; std::istringstream input(gcode); std::string layer; std::string line; while (std::getline(input, line)) { if (line.rfind(";TEST_LAYER_Z=", 0) == 0) layer = line; else if (!layer.empty() && (line.rfind("M106", 0) == 0 || line.rfind("M107", 0) == 0)) commands.emplace_back(layer, line); } return commands; }; const auto feedrates = [](const std::string &gcode) { std::vector values; std::istringstream input(gcode); std::string word; while (input >> word) if (!word.empty() && word.front() == 'F') values.push_back(word); return values; }; constexpr double sphere_radius = 50.0; // 100 mm diameter. const std::string without_speed_gcode = slice({make_sphere(sphere_radius, PI / 24.0)}, config); config.set_deserialize_strict({{"enable_overhang_speed", true}}); const std::string with_speed_gcode = slice({make_sphere(sphere_radius, PI / 24.0)}, config); const auto without_speed_fan = fan_commands(without_speed_gcode); const auto with_speed_fan = fan_commands(with_speed_gcode); const auto without_speed_feedrates = feedrates(without_speed_gcode); const auto with_speed_feedrates = feedrates(with_speed_gcode); REQUIRE_FALSE(without_speed_fan.empty()); REQUIRE(std::any_of(without_speed_fan.begin(), without_speed_fan.end(), [](const auto &command) { return command.second.find("S255") != std::string::npos; })); REQUIRE(with_speed_feedrates != without_speed_feedrates); CHECK(with_speed_fan == without_speed_fan); }