1
Return

Mesoscale Investigation of Crimping Effects and Ductile Failure Mechanisms in Plain-Woven CFRP Under In-Plane Loads

delete2025-08-25
delete0
PRE
AI
吕天佟 cover
吕天佟 (Tiantong Lv) *
Y
Yufan Liu
B
Bingxian Yuan
王登峰 (Dengfeng Wang)
D
Dewen Kong
DOI:10.1002/pc.70309delete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
Plain-woven CFRP (PW-CFRP) exhibits complex nonlinear behaviors, such as crimping effects under axial loading and ductile failure under shear; yet their underlying mechanisms remain poorly understood, and accurate multiscale models are scarce. This study proposes a mesoscale modeling framework that integrates an elastoplastic-damage matrix model, a 3D Hashin-type failure criteria for the yarn model with progressive damage rules, and a bilinear cohesive interface model, enabling precise prediction of these nonlinear tensile and shear responses. Validation through digital image correlation, stereomicroscopy, and scanning electron microscopy confirms its reliability. Results reveal that yarn straightening and matrix plasticity drive the crimping effect, while matrix flow and fiber-matrix interactions govern shearing ductile failure. Comparative analysis shows that the framework outperforms existing models in capturing the matrix-driven nonlinear behaviors and bridges the gap between experimental observations and mesoscale simulations.
Keywords:
elastic–plastic damage
multiscale
plain woven
shear

Journal

Polymer Composites cover
Polymer Composites
IF:
4.7
Papers:
2.1K
Citations:
2.3W

Organization

N
Northeast Forestry University
Scholars:
3.5K
Papers: 963
Citations: 1.3W
J
Jilin University
Scholars:
8.4W
Papers: 5.5W
Citations: 8.9K
Cited Papers

Cited Papers

Citing Papers

Citing Papers