ISSN 0021-3454 (print version)
ISSN 2500-0381 (online version)
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vol 67 / April, 2024
Article

DOI 10.17586/0021-3454-2022-65-8-581-584

UDC 62-52

AUTOMATIC DETECTION OF FILAMENT BURR IN THREE-DIMENSIONAL PRINTING DEVICES

P. S. Toporkov
ITMO University, Faculty of Control Systems and Robotics;


Y. V. Fedosov
ITMO University, SaintPetersburg, 197101, Russian Federation; Associate Professor


M. Y. Afanasiev
ITMO University, Saint Petersburg, 197101, Russian Federation; Associate professor


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Abstract. The problem of filament burr in 3D printing devices is analyzed, a review of existing solutions is carried out, and an original method for automatic detection of scoring is proposed. The proposed method for automating the detection of filament burr in 3D printing devices can provide material savings, equipment safety, and reduce time spent on readjustment and repair of devices due to the timely termination of the emergency process, which as a result guarantees the stability and reliability of the production technology.
Keywords: rapid prototyping (prototyping), production automation, process equipment control, three-dimensional printing, filament, hot part

References:
  1. 3D Printer Extruder: Grinding Filament – How to Fix It, https://m.all3dp.com/2/3d-printer-grinding-troubleshooting.
  2. How to Prevent Jamming in All-Metal Hot Ends, https://all3dp.com/2/how-to-prevent-jamming-in-all-metal-hot-ends.
  3. Santanaa L., Alvesa J.L., Netto A.S. Materials & Design, 2017, https://doi.org/10.1016/j.matdes.2017.09.020.
  4. Sen Qian, Kunlong Bao, Bin Zi and Ning Wang, Sensors, 2018, no. 9(18), pp. 2898, https://doi.org/10.3390/s18092898.
  5. García J.A., Lara E. and Aguilar L. Sensors, 2020, no. 20(22), pp. 6454, https://doi.org/10.3390/s20226454.
  6. Greeff G.P., Schilling M. Additive Manufacturing, 2017, https://doi.org/10.1016/j.addma.2016.12.005.
  7. Moretti M., Rossi A., Senin N. Additive Manufacturing, 2021, https://doi.org/10.1016/j.addma.2020.101817.