TY - JOUR
T1 - A study on the thermo-mechanical dynamic response characteristics of unidirectional CF/PEEK composite laminates under high strain rates
AU - Wu, Zhenbo
AU - Zhao, Tian
AU - Qiu, Ziheng
AU - Su, Boang
AU - Yi, Jingze
AU - Li, Ying
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/6/16
Y1 - 2025/6/16
N2 - This study systematically investigates the high-velocity impact behavior of CF/PEEK composite laminates along both the longitudinal and thickness directions using a combined theoretical, numerical, and experimental approach. Within the framework of the second law of thermodynamics, the inevitability of temperature rise and the irreversibility of stiffness degradation during impact processes were rigorously established, laying a fundamental foundation for investigating the thermo-mechanical response of semi-crystalline thermoplastic composites. The mechanisms and underlying causes of heat generation during impact were derived and validated, offering valuable insights into energy dissipation, damage evolution, and the interaction between thermal and mechanical phenomena. The finite element analysis (FEA), based on the proposed progressive damage-based heat generation theory, accurately captured both the temperature rise and stress distribution within the unidirectional CF/PEEK composite laminate specimens, demonstrating a strong correlation with the experimental data. The analysis revealed that impacts along the longitudinal direction primarily induce interfacial failure, fiber breakage, and shear cracking, whereas impacts along the transverse and thickness directions lead to inter-fiber failure (IFF), with cracks propagating at a 55° angle. This behavior is attributed to the anisotropic nature of unidirectional composites, which influences the shear stress distribution and governs the crack propagation direction. In both impact scenarios, extensive plastic deformation and brittle fracture were observed, further confirming the conversion of mechanical energy into thermal energy. These findings provide valuable insights for the structural design and optimization of composite materials subjected to extreme mechanical and thermal loading conditions.
AB - This study systematically investigates the high-velocity impact behavior of CF/PEEK composite laminates along both the longitudinal and thickness directions using a combined theoretical, numerical, and experimental approach. Within the framework of the second law of thermodynamics, the inevitability of temperature rise and the irreversibility of stiffness degradation during impact processes were rigorously established, laying a fundamental foundation for investigating the thermo-mechanical response of semi-crystalline thermoplastic composites. The mechanisms and underlying causes of heat generation during impact were derived and validated, offering valuable insights into energy dissipation, damage evolution, and the interaction between thermal and mechanical phenomena. The finite element analysis (FEA), based on the proposed progressive damage-based heat generation theory, accurately captured both the temperature rise and stress distribution within the unidirectional CF/PEEK composite laminate specimens, demonstrating a strong correlation with the experimental data. The analysis revealed that impacts along the longitudinal direction primarily induce interfacial failure, fiber breakage, and shear cracking, whereas impacts along the transverse and thickness directions lead to inter-fiber failure (IFF), with cracks propagating at a 55° angle. This behavior is attributed to the anisotropic nature of unidirectional composites, which influences the shear stress distribution and governs the crack propagation direction. In both impact scenarios, extensive plastic deformation and brittle fracture were observed, further confirming the conversion of mechanical energy into thermal energy. These findings provide valuable insights for the structural design and optimization of composite materials subjected to extreme mechanical and thermal loading conditions.
KW - CF/PEEK composites
KW - Energy dissipation
KW - High-velocity impact
KW - Impact-induced heating
KW - Thermo-mechanical response
UR - http://www.scopus.com/inward/record.url?scp=105001935208&partnerID=8YFLogxK
U2 - 10.1016/j.compscitech.2025.111162
DO - 10.1016/j.compscitech.2025.111162
M3 - Article
AN - SCOPUS:105001935208
SN - 0266-3538
VL - 266
JO - Composites Science and Technology
JF - Composites Science and Technology
M1 - 111162
ER -