TY - JOUR
T1 - Dynamic debris particles evacuation mechanism and combined femtosecond laser drilling strategy for high-aspect-ratio film cooling holes
AU - Shen, Peng
AU - Mei, Xue Song
AU - Yan, Zhaoxuan
AU - Sun, Tao
AU - Zhuo, Xueshi
AU - He, Shuaiyang
AU - Pei, Zhiming
AU - Pan, Aifei
AU - Wang, Wenjun
AU - Cui, Jianlei
AU - Fan, Zhengjie
N1 - Publisher Copyright:
© 2026 Published by Elsevier Ltd on behalf of The Society of Manufacturing Engineers.
PY - 2026/9/30
Y1 - 2026/9/30
N2 - With the continuous increase in performance requirements for aero-engines, film cooling holes (FCHs) play a critical role in enhancing engine efficiency. To address the challenge of machining large-aspect-ratio FCHs in turbine blades, this study establishes a theoretical model of the femtosecond laser–DD6 alloy interaction based on the material point method (MPM). The evolution of hole-depth saturation under femtosecond laser irradiation is systematically analyzed, revealing that hindered material removal in deep holes results from a periodic accumulation–ejection–accumulation cycle of particles. Real-time observation of particle dynamics during hole penetration was conducted using a CCD camera. When the hole depth reaches saturation, plasma within the holes exhibits four characteristic behaviors: energy transfer and reflection coupling, a piston effect with shock waves, in-hole zoning, and stabilization. During the chip removal stage, the ejected particles pass through four states: initial penetration, internal ejection, stable emission, and re-ignition with splashing. Based on these insights, a dynamic, monitored machining strategy was developed. Using this method, large-aspect-ratio FCHs with an inlet diameter of 360 μm and an aspect ratio of 22:1, free of recast layers, were successfully fabricated on 8 mm-thick nickel-based alloy substrates.
AB - With the continuous increase in performance requirements for aero-engines, film cooling holes (FCHs) play a critical role in enhancing engine efficiency. To address the challenge of machining large-aspect-ratio FCHs in turbine blades, this study establishes a theoretical model of the femtosecond laser–DD6 alloy interaction based on the material point method (MPM). The evolution of hole-depth saturation under femtosecond laser irradiation is systematically analyzed, revealing that hindered material removal in deep holes results from a periodic accumulation–ejection–accumulation cycle of particles. Real-time observation of particle dynamics during hole penetration was conducted using a CCD camera. When the hole depth reaches saturation, plasma within the holes exhibits four characteristic behaviors: energy transfer and reflection coupling, a piston effect with shock waves, in-hole zoning, and stabilization. During the chip removal stage, the ejected particles pass through four states: initial penetration, internal ejection, stable emission, and re-ignition with splashing. Based on these insights, a dynamic, monitored machining strategy was developed. Using this method, large-aspect-ratio FCHs with an inlet diameter of 360 μm and an aspect ratio of 22:1, free of recast layers, were successfully fabricated on 8 mm-thick nickel-based alloy substrates.
KW - 22:1
KW - Deep-diameter ratio
KW - Ejection motion
KW - Film cooling holes
KW - Material point method
UR - https://www.scopus.com/pages/publications/105046556844
U2 - 10.1016/j.jmapro.2026.07.080
DO - 10.1016/j.jmapro.2026.07.080
M3 - 文章
AN - SCOPUS:105046556844
SN - 1526-6125
VL - 174
SP - 861
EP - 874
JO - Journal of Manufacturing Processes
JF - Journal of Manufacturing Processes
ER -