TY - JOUR
T1 - Effect of assist gas on femtosecond laser micromachining of SiC ceramics
T2 - a combined numerical and experimental study
AU - Zhang, Jian
AU - Liu, Zhichao
AU - Zhuo, Jin
AU - Zhang, Qinghua
AU - Fan, Fei
AU - Xu, Qiao
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/11
Y1 - 2026/11
N2 - With the rapid progress in electronic information, aerospace, biomedical engineering, and micro-electromechanical systems, stringent requirements have been placed on device miniaturization and functional integration. As critical functional structural units, the machining quality and efficiency of microholes directly determine device performance and service reliability, representing a core bottleneck constraining technological advancement in related fields. Silicon carbide (SiC) ceramics, characterized by high hardness, high brittleness, and exceptional thermochemical stability, are recognized as typical difficult-to-machine materials. Femtosecond laser machining offers unique advantages for high-aspect-ratio microhole fabrication in hard-brittle ceramics; however, the assist gas configuration significantly influences laser energy utilization, machining efficiency and quality. This study systematically investigates the flow field characteristics of coaxial, off-axis, and hybrid configurations (combined off-axis and coaxial configuration) through computational fluid dynamics simulations and experimental validation. The results demonstrate that coaxial assist gas fails to establish directional flow within blind microholes, resulting in ineffective debris evacuation. In contrast, the hybrid configuration exhibits significant synergistic effects, establishing stable directional high-velocity flow fields within microholes under optimized parameters. Experimental results confirm that the hybrid configuration significantly improves laser machining efficiency and surface quality. These findings provide theoretical foundations and technical guidance for high-efficiency, high-precision fabrication of high-aspect-ratio microholes using femtosecond lasers.
AB - With the rapid progress in electronic information, aerospace, biomedical engineering, and micro-electromechanical systems, stringent requirements have been placed on device miniaturization and functional integration. As critical functional structural units, the machining quality and efficiency of microholes directly determine device performance and service reliability, representing a core bottleneck constraining technological advancement in related fields. Silicon carbide (SiC) ceramics, characterized by high hardness, high brittleness, and exceptional thermochemical stability, are recognized as typical difficult-to-machine materials. Femtosecond laser machining offers unique advantages for high-aspect-ratio microhole fabrication in hard-brittle ceramics; however, the assist gas configuration significantly influences laser energy utilization, machining efficiency and quality. This study systematically investigates the flow field characteristics of coaxial, off-axis, and hybrid configurations (combined off-axis and coaxial configuration) through computational fluid dynamics simulations and experimental validation. The results demonstrate that coaxial assist gas fails to establish directional flow within blind microholes, resulting in ineffective debris evacuation. In contrast, the hybrid configuration exhibits significant synergistic effects, establishing stable directional high-velocity flow fields within microholes under optimized parameters. Experimental results confirm that the hybrid configuration significantly improves laser machining efficiency and surface quality. These findings provide theoretical foundations and technical guidance for high-efficiency, high-precision fabrication of high-aspect-ratio microholes using femtosecond lasers.
KW - Assist gas
KW - Debris evacuation
KW - Femtosecond laser
KW - High-aspect-ratio microhole
KW - Silicon carbide
UR - https://www.scopus.com/pages/publications/105043569490
U2 - 10.1016/j.optlastec.2026.115903
DO - 10.1016/j.optlastec.2026.115903
M3 - 文章
AN - SCOPUS:105043569490
SN - 0030-3992
VL - 203
JO - Optics and Laser Technology
JF - Optics and Laser Technology
M1 - 115903
ER -