Temperature- and electrolyte-dependent material removal mechanisms in synchronous laser-electrochemical drilling of SiCp/Al composites

Deep micro-hole drilling in SiC p /Al composites remains challenging in conventional processes because hard SiC particles and heterogeneous Al-SiC interfaces complicate material removal, resulting in severe tool wear, low machining efficiency, and poor surface integrity. In this study, synchronous laser-assisted electrochemical machining (LECM), combining central laser irradiation with peripheral electrochemical dissolution, was developed for efficient and high-quality drilling of SiC p /Al composites. The effects of electrolyte composition, laser power, SiC volume fraction, voltage, and electrode feed rate on the material removal rate, surface roughness, and precision were investigated. The material removal mechanisms were analyzed through multiphysics simulation, in-situ temperature measurement, electrochemical testing, and surface characterization. At a laser power of 7 W, the maximum stable feed rates reached 5.1 mm/min and 1.9 mm/min for the 15 vol% and 30 vol% SiCp/Al composites, respectively, compared with 2.0 and 1.1 mm/min for conventional ECM. Electrochemical testing revealed that below 50 °C, the passive film’s effects strengthened with rising electrolyte temperature and laser power, improving surface quality; above 50 °C, passive-film breakdown at lower potential combined with accelerated dissolution rate enhanced surface quality. NaNO 3 electrolyte provided more stable passivation-controlled dissolution and better sidewall quality than NaCl. Finally, 10-mm-deep micro-holes were fabricated without recast layer, demonstrating the feasibility of LECM for deep micro-hole drilling in SiC p /Al composites.

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Publication Details

Journal
Optics & Laser Technology
Published
2026-10-04
DOI
https://doi.org/10.1016/j.optlastec.2026.116576
Primary Topic
Advanced Machining and Optimization Techniques
Type
article
Field-Weighted Citation Impact
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Temperature- and electrolyte-dependent material removal mechanisms in synchronous laser-electrochemical drilling of SiCp/Al composites

Yue Wang, Zhang Wenwu, Linlin Zhang, Yong Yang
Optics & Laser Technology
Advanced Machining and Optimization Techniques
article

Temperature- and electrolyte-dependent material removal mechanisms in synchronous laser-electrochemical drilling of SiCp/Al composites

Yue Wang, Zhang Wenwu, Linlin Zhang, Yong Yang
article en

Abstract

Deep micro-hole drilling in SiC p /Al composites remains challenging in conventional processes because hard SiC particles and heterogeneous Al-SiC interfaces complicate material removal, resulting in severe tool wear, low machining efficiency, and poor surface integrity. In this study, synchronous laser-assisted electrochemical machining (LECM), combining central laser irradiation with peripheral electrochemical dissolution, was developed for efficient and high-quality drilling of SiC p /Al composites. The effects of electrolyte composition, laser power, SiC volume fraction, voltage, and electrode feed rate on the material removal rate, surface roughness, and precision were investigated. The material removal mechanisms were analyzed through multiphysics simulation, in-situ temperature measurement, electrochemical testing, and surface characterization. At a laser power of 7 W, the maximum stable feed rates reached 5.1 mm/min and 1.9 mm/min for the 15 vol% and 30 vol% SiCp/Al composites, respectively, compared with 2.0 and 1.1 mm/min for conventional ECM. Electrochemical testing revealed that below 50 °C, the passive film’s effects strengthened with rising electrolyte temperature and laser power, improving surface quality; above 50 °C, passive-film breakdown at lower potential combined with accelerated dissolution rate enhanced surface quality. NaNO 3 electrolyte provided more stable passivation-controlled dissolution and better sidewall quality than NaCl. Finally, 10-mm-deep micro-holes were fabricated without recast layer, demonstrating the feasibility of LECM for deep micro-hole drilling in SiC p /Al composites.

Optics & Laser TechnologyVol. 204
Chinese Academy of Sciences (CN), University of Chinese Academy of Sciences (CN), Ningbo Institute of Industrial Technology (CN)
Chinese Academy of Sciences
Openalex Percentile: Top 22%
Advanced Machining and Optimization Techniques
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