TY - JOUR
T1 - Anisotropic elastoplasticity and fracture of SCFR-PEEK composites in complex biaxial loading
T2 - Experiments and modelling
AU - Liu, Wencheng
AU - Liu, Jinlong
AU - Li, Xinghao
AU - Huang, Jia
AU - Chen, Yang
AU - Li, Yulong
AU - Ma, Jun
AU - Cui, Hao
N1 - Publisher Copyright:
© 2024 The Authors
PY - 2024/5/26
Y1 - 2024/5/26
N2 - This research aims to gain insight into the anisotropic deformation and fracture behaviours of short carbon fibre reinforced polyether-ether ketone composites (SCFR-PEEK) under complex loading using experimental and modelling approaches. Novel biaxial tensile experiments using optimised cruciform specimens are designed and performed to study the anisotropic elastoplasticity and fracture behaviours of SCFR-PEEK in various stress states. An advanced anisotropic constitutive model was developed, experimentally calibrated, numerically implemented, and successfully verified by mechanical responses of biaxial tension with various stress ratios. Furthermore, using a hybrid experimental-numerical approach, the biaxial failure stress at crack initiation sites captured by a high-speed camera in biaxial tension was obtained. Employing experimental failure stresses at various uniaxial and biaxial stress states, a maximum stress based failure criterion was developed, which is coupled with the anisotropic elastoplastic model, thus enabling the description the anisotropic elastoplastic and failure behaviours under complex loading. The prediction of the failure of SCFR-PEEK in complex biaxial stress states using the coupled model is in good agreement with biaxial tensile experimental results using circular-notched specimens. Therefore, the developed model is verified to be capable of describing both elastoplastic deformation and fracture failure behaviours of SCFR-PEEK composites in complex loading.
AB - This research aims to gain insight into the anisotropic deformation and fracture behaviours of short carbon fibre reinforced polyether-ether ketone composites (SCFR-PEEK) under complex loading using experimental and modelling approaches. Novel biaxial tensile experiments using optimised cruciform specimens are designed and performed to study the anisotropic elastoplasticity and fracture behaviours of SCFR-PEEK in various stress states. An advanced anisotropic constitutive model was developed, experimentally calibrated, numerically implemented, and successfully verified by mechanical responses of biaxial tension with various stress ratios. Furthermore, using a hybrid experimental-numerical approach, the biaxial failure stress at crack initiation sites captured by a high-speed camera in biaxial tension was obtained. Employing experimental failure stresses at various uniaxial and biaxial stress states, a maximum stress based failure criterion was developed, which is coupled with the anisotropic elastoplastic model, thus enabling the description the anisotropic elastoplastic and failure behaviours under complex loading. The prediction of the failure of SCFR-PEEK in complex biaxial stress states using the coupled model is in good agreement with biaxial tensile experimental results using circular-notched specimens. Therefore, the developed model is verified to be capable of describing both elastoplastic deformation and fracture failure behaviours of SCFR-PEEK composites in complex loading.
KW - Anisotropy
KW - Failure criterion
KW - Fracture
KW - Non-linear behaviour
KW - Short-fibre composites
UR - http://www.scopus.com/inward/record.url?scp=85189521753&partnerID=8YFLogxK
U2 - 10.1016/j.compscitech.2024.110569
DO - 10.1016/j.compscitech.2024.110569
M3 - 文章
AN - SCOPUS:85189521753
SN - 0266-3538
VL - 251
JO - Composites Science and Technology
JF - Composites Science and Technology
M1 - 110569
ER -