Zhu Zhaolong, Buck Dietrich, Wang Jinxin, Wu Zhanwen, Xu Wei, Guo Xiaolei
Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, Nanjing Forestry University, Nanjing 210037, China.
College of Furnishings and Industrial Design, Nanjing Forestry University, Nanjing 210037, China.
Materials (Basel). 2022 Feb 10;15(4):1303. doi: 10.3390/ma15041303.
The aim of this study was to improve the machinability of wood-plastic composites by exploring the effects of different wood-plastic composites on machinability. In particular, the effects of milling with cemented carbide cutters were assessed by investigating cutting forces, cutting temperature, surface quality, chip formation, and tool wear. The cutting parameters determined to yield an optimal surface quality were rake angle 2°, cutting speed 9.0 m/s, feed per tooth 0.3 mm, and cutting depth 1.5 mm. In these optimized milling conditions, the wood-plastic composite with polypropylene exhibited the highest cutting forces, cutting temperature, and tool wear, followed by polyethylene and polyvinyl chloride wood-plastic composites. Two wear patterns were determined during wood-plastic composite machining, namely chipping and flaking. Due to the different material composition, semi-discontinuous ribbon chips and continuous ribbon chips were generated from the machining process of wood-plastic composites with polypropylene and polyethylene, respectively. The wood-plastic composite with polyvinyl chloride, on the other hand, formed needle-like chips. These results contribute to a theoretical and practical basis for improved wood-plastic composite machining in industrial settings.
本研究的目的是通过探索不同木塑复合材料对可加工性的影响来提高木塑复合材料的可加工性。具体而言,通过研究切削力、切削温度、表面质量、切屑形成和刀具磨损来评估硬质合金刀具铣削的效果。确定产生最佳表面质量的切削参数为前角2°、切削速度9.0米/秒、每齿进给量0.3毫米和切削深度1.5毫米。在这些优化的铣削条件下,聚丙烯木塑复合材料表现出最高的切削力、切削温度和刀具磨损,其次是聚乙烯和聚氯乙烯木塑复合材料。在木塑复合材料加工过程中确定了两种磨损模式,即崩刃和剥落。由于材料成分不同,聚丙烯和聚乙烯木塑复合材料加工过程中分别产生了半连续带状切屑和连续带状切屑。另一方面,聚氯乙烯木塑复合材料形成针状切屑。这些结果为工业环境中改进木塑复合材料加工提供了理论和实践基础。