材料科学
分层(地质)
复合材料
极限抗拉强度
残余强度
热塑性塑料
各向同性
热固性聚合物
开裂
巴黎法
结构工程
张力(地质)
残余应力
残余物
断裂力学
裂缝闭合
计算机科学
工程类
古生物学
构造学
物理
量子力学
算法
俯冲
生物
作者
Niki Tsivouraki,Κωνσταντίνος Τσερπές,Ioannis Sioutis
出处
期刊:Materials
[Multidisciplinary Digital Publishing Institute]
日期:2024-01-11
卷期号:17 (2): 362-362
被引量:2
摘要
Thermoplastic composites are continuously replacing thermosetting composites in lightweight structures. However, the accomplished work on the fatigue behavior of thermoplastics is quite limited. In the present work, we propose a numerical modeling approach for simulating fatigue delamination growth and predicting the residual tensile strength of quasi-isotropic TC 1225 LM PAEK thermoplastic coupons. The approach was supported and validated by tension and fatigue (non-interrupted and interrupted) tests. Fatigue delamination growth was simulated using a mixed-mode fatigue crack growth model, which was based on the cohesive zone modeling method. Quasi-static tension analyses on pristine and fatigued coupons were performed using a progressive damage model. These analyses were implemented using a set of Hashin-type strain-based failure criteria and a damage mechanics-based material property degradation module. Utilizing the fatigue model, we accurately foretold the expansion of delamination concerning the cycle count across all interfaces. The results agree well with C-scan images taken on fatigued coupons during interruptions of fatigue tests. An unequal and unsymmetric delamination growth was predicted due to the quasi-isotropic layup. Moreover, the combined models capture the decrease in the residual tensile strength of the coupons. During the quasi-static tension analysis of the fatigued coupons, we observed that the primary driving failure mechanisms were the rapid spread of existing delamination and the consequential severe matrix cracking.
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