4.6 Article

Study on the High-Speed Milling Performance of High-Volume Fraction SiCp/Al Composites

Journal

MATERIALS
Volume 14, Issue 15, Pages -

Publisher

MDPI
DOI: 10.3390/ma14154143

Keywords

high-speed milling; SiCp; Al composites; surface quality; machining defects; cutting simulation

Funding

  1. Research Projects of Basic Scientific Research Business Expenses of Provincial Colleges and Universities in Heilongjiang Province [135209308, 135409102, 135509111]
  2. Intelligent Manufacturing Equipment Innovation Team-Heilongjiang Province Intelligent Manufacturing Equipment Industrialization Collaborative Innovation Center [135409102]
  3. Heilongjiang Higher Education Teaching Reform Project [SJGY20190715]

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This study simulated the milling process of SiCp/Al composites using the ABAQUS/explicit platform and optimized the cutting parameters, providing a theoretical basis for subsequent cutting.
Compared with other materials, high-volume fraction aluminum-based silicon carbide composites (hereinafter referred to as SiCp/Al) have many advantages, including high strength, small change in the expansion coefficient due to temperature, high wear resistance, high corrosion resistance, high fatigue resistance, low density, good dimensional stability, and thermal conductivity. SiCp/Al composites have been widely used in aerospace, ordnance, transportation service, precision instruments, and in many other fields. In this study, the ABAQUS/explicit large-scale finite element analysis platform was used to simulate the milling process of SiCp/Al composites. By changing the parameters of the tool angle, milling depth, and milling speed, the influence of these parameters on the cutting force, cutting temperature, cutting stress, and cutting chips was studied. Optimization of the parameters was based on the above change rules to obtain the best processing combination of parameters. Then, the causes of surface machining defects, such as deep pits, shallow pits, and bulges, were simulated and discussed. Finally, the best cutting parameters obtained through simulation analysis was the tool rake angle gamma(0) = 5 degrees, tool clearance angle alpha(0) = 5 degrees, corner radius r = 0.4 mm, milling depth a(p) = 50 mm, and milling speed v(c) = 300 m/min. The optimal combination of milling parameters provides a theoretical basis for subsequent cutting.

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