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Updated Wiki content
@@ -100,18 +100,18 @@ We, therefore, need to run 12 PA tests as below:
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| Speed | Acceleration |
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|-------|--------------|
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| 50 | 1k |
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| 100 | 1k |
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| 150 | 1k |
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| 200 | 1k |
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| 50 | 2k |
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| 100 | 2k |
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| 150 | 2k |
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| 200 | 2k |
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| 50 | 4k |
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| 100 | 4k |
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| 150 | 4k |
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| 200 | 4k |
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| 50 | 1000 |
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| 100 | 1000 |
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| 150 | 1000 |
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| 200 | 1000 |
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| 50 | 2000 |
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| 100 | 2000 |
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| 150 | 2000 |
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| 200 | 2000 |
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| 50 | 4000 |
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| 100 | 4000 |
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| 150 | 4000 |
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| 200 | 4000 |
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### Identifying the flow rates from the print speed
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@@ -187,6 +187,21 @@ Now run the tests and note the optimal PA value, the flow, and the acceleration.
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Concatenate the PA value, the flow value, and the acceleration value into the final comma-separated sets to create the values entered in the model as shown above.
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```json
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0.036 , 3.84 , 1000
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0.036 , 7.68 , 1000
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0.036 , 11.51 , 1000
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0.036 , 15.35 , 1000
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0.036 , 3.84 , 2000
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0.03 , 7.68 , 2000
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0.029 , 11.51 , 2000
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0.028 , 15.35 , 2000
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0.032 , 3.84 , 4000
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0.028 , 7.68 , 4000
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0.026 , 11.51 , 4000
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0.024 , 15.35 , 4000
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```
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**You’re now done! The PA profile is created and calibrated!**
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Remember to paste the values in the adaptive pressure advance measurements text box as shown below, and save your filament profile.
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@@ -52,9 +52,16 @@ This is caused by the pressure drop in the nozzle when printing in the air and a
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#### Adaptive pressure advance measurements (beta)
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Add sets of pressure advance (PA) values, the volumetric flow speeds and accelerations they were measured at, separated by a comma.
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Add sets of **pressure advance** (PA) values, the **volumetric flow speeds** and **accelerations** they were measured at, separated by a comma.
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One set of values per line. For example:
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```json
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[PA 1],[FLOW 1],[ACCELERATION 1]
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[PA 2],[FLOW 2],[ACCELERATION 2]
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...
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[PA n],[FLOW n],[ACCELERATION n]
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```
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```json
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0.04,3.96,3000
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0.033,3.96,10000
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