EXPERIMENTAL DETERMINATION OF THE OPTIMUM CUTTING TOOL FOR CNC MILLING OF 3D PRINTED PLA PARTS
Author:
KARTAL Fuat1ORCID, KAPTAN Arslan2ORCID
Affiliation:
1. KASTAMONU ÜNİVERSİTESİ 2. SİVAS CUMHURİYET ÜNİVERSİTESİ, SİVAS MESLEK YÜKSEKOKULU
Abstract
The purpose of this study is to determine the most suitable cutting tool for achieving the desired diameter dimensions in parts produced using PLA material in a 3D printer. A plastic plate in the shape of a rectangular prism with dimensions of 90x40x10 mm was printed without holes with a 100% filling ratio in a 3D printer. A belt-pulley mechanism requiring bearing assembly was designed, manufactured, and tested for applicability. The study successfully identified the optimum parameters for achieving a 17 mm diameter measurement with the desired tolerance in PLA material without causing melt damage. These parameters are spindle speed of 15000 rpm, feed rate of 500 mm/min, cutting depth of 0.5 mm, minimum end mill diameter of 10 mm, and 4 cutting edges. The study also found that the morphological properties of the PLA workpiece were affected by the cutting process of different diameter milling cutters. The findings of this study can be useful for improving the accuracy and efficiency of 3D printing and CNC milling processes. This study provides important insights into the appropriate cutting tool for this process of parts produced using PLA material. The identified optimum parameters can help reduce energy-time-raw material losses and accumulation of waste PLA material, which are some of the most important problems of manufacturing with 3D printers.
Publisher
International Journal of 3D Printing Technologies and Digital Industry
Subject
Marketing,Economics and Econometrics,General Materials Science,General Chemical Engineering
Reference20 articles.
1. 1. Lalegani Dezaki, M., Mohd Ariffin, M. K. A., & Baharuddin, B. T. H. T. “Experimental study of drilling 3D printed polylactic acid (PLA) in FDM process”. Fused Deposition Modeling Based 3D Printing, Pages 85-106, 2021. 2. 2. Vidakis, N., Petousis, M., Mountakis, N., & Kechagias, J. D. “Material extrusion 3D printing and friction stir welding: an insight into the weldability of polylactic acid plates based on a full factorial design”. The International Journal of Advanced Manufacturing Technology, Vol. 121, Issue 5-6, Pages 3817-3839, 2022. 3. 3. El Mehtedi, M., Buonadonna, P., Carta, M., El Mohtadi, R., Marongiu, G., Loi, G., & Aymerich, F. “Effects of milling parameters on roughness and burr formation in 3D-printed PLA components”. Procedia Computer Science, Vol. 217, Pages 1560-1569, 2023. 4. 4. Moradi, M., Karami Moghadam, M., Shamsborhan, M., Bodaghi, M., & Falavandi, H. “Post-processing of FDM 3D-printed polylactic acid parts by laser beam cutting”. Polymers, Vol. 12, Issue 3, Pages 550, 2020. 5. 5. Sandhu, K., Singh, G., Singh, S., Kumar, R., Prakash, C., Ramakrishna, S., ... & Pruncu, C. I. “Surface characteristics of machined polystyrene with 3D printed thermoplastic tool”. Materials, Vol. 13, Issue 12, Pages 2729, 2020.
|
|