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首页> 外文期刊>The Journal of Strain Analysis for Engineering Design >The dynamic compressive behavior of armor structural materials in split Hopkinson pressure bar test
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The dynamic compressive behavior of armor structural materials in split Hopkinson pressure bar test

机译:分段霍普金森压力杆试验中装甲结构材料的动态压缩行为

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High strain rate-dependent deformation behaviors are important in design and optimization of armor structural materials. Herein, the static tensile and the dynamic compressive behaviors of the practical materials including Al5083, rolled homogeneous armor steel and tungsten heavy alloy were investigated by means of a universal testing machine and a split Hopkinson pressure bar apparatus, respectively. The test was performed at high strain rates (1200-3100 s~(-1)) to obtain a detailed understanding of the responses of the materials. A finite element analysis was then carried out using an elastic-plastic failure material model considering a user-defined parameter determined from the split Hopkinson pressure bar tests. Both flow and peak stresses of the materials were different corresponding to the mechanical properties and strain rates. The dynamic yield stresses are generally larger than static yield stresses, particularly in AI5083. As shown in the results, the experimentally obtained true stress-strain behaviors give a good agreement with those from finite element analyses. In addition, observations of the impacted zone in the specimen showed that a few cracks propagated along the specimen's original periphery. In order to determine the level of deformation, strain rate sensitivity, m, at strain of 0.1 was also calculated for all materials; rolled homogeneous armor steel and tungsten heavy alloy had lower strain rate sensitivity than AI5083. The proposed procedure shows proper agreements between numerical predictions and experimental results such as stress-strain relations, peak stresses and deformation. The methodology coupled with the experimental data reflecting the dynamic compressive properties provides a more accurate prediction of the strain rate-dependent behavior of armor structural materials.
机译:高应变率相关的变形行为在装甲结构材料的设计和优化中很重要。在此,分别通过万能试验机和分体式霍普金森压力棒装置研究了Al5083,轧制均质铠装钢和钨重合金等实用材料的静态拉伸和动态压缩行为。该测试是在高应变率(1200-3100 s〜(-1))下进行的,以获得对材料响应的详细了解。然后使用弹塑性破坏材料模型进行有限元分析,其中考虑了用户定义的参数,这些参数是根据分开的Hopkinson压力棒试验确定的。材料的流动应力和峰值应力均与机械性能和应变率相对应。动态屈服应力通常大于静态屈服应力,尤其是在AI5083中。结果表明,实验获得的真实应力-应变行为与有限元分析的结果吻合良好。另外,对样品中冲击区域的观察表明,一些裂纹沿着样品的原始周边传播。为了确定变形水平,还计算了所有材料在应变为0.1时的应变率灵敏度m。轧制的均质装甲钢和钨重合金的应变率敏感性低于AI5083。所提出的程序显示出数值预测与实验结果(如应力-应变关系,峰值应力和变形)之间的适当一致性。该方法与反映动态压缩特性的实验数据相结合,可以更准确地预测装甲结构材料的应变速率相关行为。

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