材料科学
分离式霍普金森压力棒
分层(地质)
复合材料
应变率
复合数
断裂(地质)
结构工程
平纹织物
巴(单位)
非线性系统
抗压强度
纤维
常量(计算机编程)
工程类
地质学
物理
计算机科学
古生物学
海洋学
构造学
量子力学
俯冲
程序设计语言
纱线
作者
Xiaoyu Wang,Zhixing Li,Licheng Guo,Zhenxin Wang,Jiuzhou Zhao
标识
DOI:10.1016/j.dt.2023.04.005
摘要
Experimental investigations on dynamic in-plane compressive behavior of a plain weave composite were performed using the split Hopkinson pressure bar. A quantitative criterion for calculating the constant strain rate of composites was established. Then the upper limit of strain rate, restricted by stress equilibrium and constant loading rate, was rationally estimated and confirmed by tests. Within the achievable range of 0.001/s–895/s, it was found that the strength increased first and subsequently decreased as the strain rate increased. This feature was also reflected by the turning point (579/s) of the bilinear model for strength prediction. The transition in failure mechanism, from local opening damage to completely splitting destruction, was mainly responsible for such strain rate effects. And three major failure modes were summarized under microscopic observations: fiber fracture, inter-fiber fracture, and interface delamination. Finally, by introducing a nonlinear damage variable, a simplified ZWT model was developed to characterize the dynamic mechanical response. Excellent agreement was shown between the experimental and simulated results.
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