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Constant strain rate testing of a G10 laminate composite through optimized kolsky bar pulse-shaping techniques

机译:通过优化的Kolsky Bar脉冲整形技术对G10层压复合材料进行恒定应变率测试

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Pulse-shaping techniques have been used for many years now in Kolsky bar testing of brittle materials. The use of pulse shapers allow the experimentalist to conduct high strain rate tests on brittle materials while ensuring that the sample will achieve a state of dynamic stress equilibrium before it fails, as well as to achieve a constant strain rate loading state for a large portion of the test. The process of choosing the appropriate pulse-shaper system has typically been one of trail-and-error, sometimes requiring many experimental trails to achieve optimal results. Advances in analytic modeling of Kolsky bar tests now make it possible, in an a priori fashion, to design a pulse-shaper system to produce a known constant strain rate experiment. This article describes the approach of coupling these analytic models to an optimization technique to quickly find a pulse-shaper system that will produce an experiment at a known constant strain rate. Experiments were conducted and the model predictions compared to resulting strain rate histories for a G10 material. Stress-strain curves for G10 are presented at three different strain rates in both the in-plane and out-of-plane loading configurations with respect to the laminate plys. The G10 material is not found to be rate sensitive in either its strength or failure properties.
机译:脉冲整形技术已经在脆性材料的Kolsky条测试中使用了很多年。脉冲整形器的使用使实验人员可以对脆性材料进行高应变率测试,同时确保样品在失效之前将达到动态应力平衡状态,并在大部分样品中实现恒定的应变率加载状态。考试。选择合适的脉冲整形器系统的过程通常是一连串错误,有时需要许多实验性跟踪才能获得最佳结果。 Kolsky条形测试的分析模型的发展现在使得可以以先验的方式设计脉冲整形器系统以产生已知的恒定应变率实验。本文介绍了将这些分析模型与优化技术耦合以快速找到脉冲整形器系统的方法,该系统将以已知的恒定应变率进行实验。进行了实验,并将模型预测与G10材料的应变速率历史进行了比较。 G10的应力-应变曲线在相对于层压板的面内和面外加载配置中均以三种不同的应变率呈现。无论是强度还是破坏性能,都未发现G10材料对速率敏感。

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