DOI: 10.3390/mi17101144 ISSN: 2072-666X

Study on the Machining Characteristics of SiCp/Al Under Pulsed Laser–Ultrasonic Vibration-Assisted Composite Turning

Guangze Du, Yan Gu, Bin Fu, Xuesong Wang, Lingling Han, Jiaxin Zhao, Bingjin Yu, Minglei Wu

Owing to their lightweight nature, low coefficient of thermal expansion, and strong wear resistance, aluminum-based silicon carbide composites serve as pivotal components in aerospace applications. Nonetheless, traditional cutting procedures face severe limitations. The abrasive resistance imparted by ultra-hard SiC particles induces severe load spikes and causes significant micro-damage during machining. To overcome these machining barriers, this study introduces a hybrid energy-field approach, namely, pulsed laser–ultrasonic vibration-assisted composite turning (LUAT). To deconstruct the thermo-mechanical coupling mechanism, a two-dimensional finite element simulation framework was constructed to investigate dynamic force responses and transient temperature fields. Leveraging a custom-built hybrid machining system, experimental investigations systematically evaluated dynamic cutting forces, areal roughness (Sa), and micro-scale damage mechanisms across conventional turning (CT), pulsed laser-assisted turning (PLAT), and LUAT processes. The findings confirmed that laser thermal softening lowered matrix deformation resistance, while the high-frequency intermittent contact mode of LUAT effectively minimized average cutting forces compared with all benchmark processes. Operating at 40 W laser power, 600 r/min rotational speed, 4 μm cutting depth, and 2 mm/min feed rate, LUAT achieved its lowest surface roughness of Sa = 0.075 μm, demonstrating a 56% improvement over laser-assisted turning alone. This work provides valuable theoretical and practical insights for advancing the high-efficiency precision manufacturing of hard-to-machine composites with high volume fractions.