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High strain rate responses and failure analysis in polymer matrix composites - An experimental and finite element study

机译:聚合物基复合材料的高应变速率响应和破坏分析-实验和有限元研究

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Compressive properties and failure analysis of unidirectional and plain weave S2-glass/vinylester composites under high strain rate (HSR) loading have been investigated using the Split Hopkinson Pressure Bar (SHPB) technique. A systematic experimental approach has been adopted in this work to identify the damage progression at various stress levels and the strain rate effects on composites. The classical SHPB apparatus has been incorporated by a wave-trapping mechanism to apply a predetermined level of impact loading and to restrict the repeated loading. This facilitates identification of the microstructural damage progression during the loading period. The stress-strain responses at various strain rates in all three principal directions are investigated and the relevant failure modes are also identified by microscopic examinations. The quasi-static compressive strength, the strain to failure, and the elastic moduli are compared with SHPB test results to determine the shift in the failure mechanism. The compressive strength and failure strain for both unidirectional and plain weave composites are observed to be rate dependent. Such rate dependencies of compressive response are analyzed and correlation between the failure modes and the rate effects on composites are established. Finally, a three-dimensional transient finite element analysis (FEA) has also been carried out for unidirectional composites under high strain rate loading in order to have a thorough understanding of the failure mechanisms. Loads are applied in thickness, fiber and transverse of fiber directions and corresponding stress contours are simulated. The FEA prediction of the stress-strain behavior in all the three principal directions of loading correlates well with the high strain rate experimental results.
机译:使用分裂霍普金森压力棒(SHPB)技术研究了单向编织和平纹编织S2-玻璃/乙烯基酯复合材料在高应变率(HSR)载荷下的压缩性能和破坏分析。在这项工作中采用了系统的实验方法来确定在各种应力​​水平下的破坏进程以及应变速率对复合材料的影响。经典的SHPB设备已通过陷波机制合并,以施加预定水平的冲击载荷并限制重复载荷。这有助于在加载期间识别微结构损伤的进展。研究了在所有三个主要方向上各种应变率下的应力应变响应,并通过显微镜检查确定了相关的破坏模式。将准静态抗压强度,破坏应变和弹性模量与SHPB测试结果进行比较,以确定破坏机理的变化。观察到单向和平纹复合材料的抗压强度和破坏应变与速率有关。分析了这种压缩响应的速率依赖性,并建立了破坏模式与速率对复合材料的影响之间的相关性。最后,还对高应变率载荷下的单向复合材料进行了三维瞬态有限元分析(FEA),以全面了解破坏机理。在厚度,纤维和纤维方向上施加载荷,并模拟相应的应力轮廓。在三个主要载荷方向上的应力-应变行为的有限元分析预测与高应变率实验结果密切相关。

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