TY - JOUR
T1 - Damage characteristics and parameter influence laws of laser-shocked delamination of CFRP laminates
AU - Xu, Peiwen
AU - Wu, Haonian
AU - Yan, Li
AU - Tang, Yuyuan
AU - Xu, Ming
AU - He, Weifeng
AU - Nie, Xiangfan
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025
Y1 - 2025
N2 - Laser Bond Inspection (LBI) is an emerging technology that employs the mechanical effect of laser-induced shock wave to quantitatively evaluate the interfacial strength of composite materials, particularly for Carbon Fiber Reinforced Polymer (CFRP) laminates. This process requires an in-depth understanding of the damage characteristics of laser-induced delamination and the influence of laser parameters on the coupling behavior of laser-induced shock wave propagation. This work develops a new three-dimensional constitutive model specifically designed for CFRP laminates subjected to laser shock. Combining empirical testing with numerical simulation results, it reveals the different damage characteristics and mechanisms of laser-induced delamination, with a particular focus on elucidating the damage mechanisms and sequence of multi-layer delamination occurrence. Meanwhile, the threshold for single-layer delamination and the transition threshold to multi-layer delamination are provided, offering a reference range of power density for conducting LBI testing. Furthermore, the effects of different laser parameters on delamination characteristics and shock wave propagation patterns are revealed, providing guidance for laser parameter design to regulate the internal stress distribution within laminates.
AB - Laser Bond Inspection (LBI) is an emerging technology that employs the mechanical effect of laser-induced shock wave to quantitatively evaluate the interfacial strength of composite materials, particularly for Carbon Fiber Reinforced Polymer (CFRP) laminates. This process requires an in-depth understanding of the damage characteristics of laser-induced delamination and the influence of laser parameters on the coupling behavior of laser-induced shock wave propagation. This work develops a new three-dimensional constitutive model specifically designed for CFRP laminates subjected to laser shock. Combining empirical testing with numerical simulation results, it reveals the different damage characteristics and mechanisms of laser-induced delamination, with a particular focus on elucidating the damage mechanisms and sequence of multi-layer delamination occurrence. Meanwhile, the threshold for single-layer delamination and the transition threshold to multi-layer delamination are provided, offering a reference range of power density for conducting LBI testing. Furthermore, the effects of different laser parameters on delamination characteristics and shock wave propagation patterns are revealed, providing guidance for laser parameter design to regulate the internal stress distribution within laminates.
KW - CFRP laminates
KW - laser-induced shock wave
KW - multi-layer delamination
KW - single-layer delamination
KW - three-dimensional constitutive model
UR - https://www.scopus.com/pages/publications/105001134146
U2 - 10.1177/07316844251328395
DO - 10.1177/07316844251328395
M3 - 文章
AN - SCOPUS:105001134146
SN - 0731-6844
JO - Journal of Reinforced Plastics and Composites
JF - Journal of Reinforced Plastics and Composites
ER -