TY - JOUR
T1 - Ablation enhancement and plasma shielding effects during multiple pulses irradiation with different femtosecond laser repetition rates
AU - Zhan, Jie
AU - Xu, Zhao
AU - Sun, Jiaxin
AU - Zhu, Weihua
AU - Wang, Sumei
AU - Lian, Yiling
AU - Jiang, Lan
AU - Zhao, Longjiang
N1 - Publisher Copyright:
© 2025
PY - 2025/12/12
Y1 - 2025/12/12
N2 - The ultra-short pulse duration of femtosecond laser broadens the micro-machining applications in metals. Controlling plasma dynamics can change machining efficiency and quality. However, continuous pulse irradiation complicates plasma signal capture, preventing process optimization. The field programmable gate array (FPGA) and intensified charge-coupled device (ICCD) were employed to capture plasma signals for the first time after preset multiple pulses at varying repetition rates. Increasing the rate from 1 kHz to 50 kHz enhances plasma intensity, ejection height, and machining depth, indicating improved ablation efficiency. At 400 kHz, the plasma intensity decreases, but the ejection height continues to increase, and the machining depths of the grooves reduce. This is probably attributed to the plasma shielding effect, which means that the subsequent pulses' energy is absorbed by prior-induced plasma, reducing laser-metal interaction. The thermal effect was pronounced at 400 kHz, with a large recast layer and high oxygen content around the irradiation area. Optimal material removal and minimal ripple period (706.7 nm) occurred at the repetition rate of 50 kHz. Adjusting the femtosecond laser repetition rate can regulate ablation efficiency, plasma shielding and thermal accumulation, affecting micro-hole, groove and microstructure machining results.
AB - The ultra-short pulse duration of femtosecond laser broadens the micro-machining applications in metals. Controlling plasma dynamics can change machining efficiency and quality. However, continuous pulse irradiation complicates plasma signal capture, preventing process optimization. The field programmable gate array (FPGA) and intensified charge-coupled device (ICCD) were employed to capture plasma signals for the first time after preset multiple pulses at varying repetition rates. Increasing the rate from 1 kHz to 50 kHz enhances plasma intensity, ejection height, and machining depth, indicating improved ablation efficiency. At 400 kHz, the plasma intensity decreases, but the ejection height continues to increase, and the machining depths of the grooves reduce. This is probably attributed to the plasma shielding effect, which means that the subsequent pulses' energy is absorbed by prior-induced plasma, reducing laser-metal interaction. The thermal effect was pronounced at 400 kHz, with a large recast layer and high oxygen content around the irradiation area. Optimal material removal and minimal ripple period (706.7 nm) occurred at the repetition rate of 50 kHz. Adjusting the femtosecond laser repetition rate can regulate ablation efficiency, plasma shielding and thermal accumulation, affecting micro-hole, groove and microstructure machining results.
KW - Micro/nano machining
KW - ablation enhancement
KW - heat accumulation
KW - plasma shielding
UR - https://www.scopus.com/pages/publications/105018065504
U2 - 10.1016/j.jmapro.2025.10.019
DO - 10.1016/j.jmapro.2025.10.019
M3 - Article
AN - SCOPUS:105018065504
SN - 1526-6125
VL - 155
SP - 1
EP - 11
JO - Journal of Manufacturing Processes
JF - Journal of Manufacturing Processes
ER -