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Microscopic fracture mechanisms observed on Cu-Sn frangible bullets under quasi-static and dynamic compression

机译:准静态和动态压缩作用下Cu-Sn易碎子弹的微观断裂机理

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The damage behavior of Cu-Sn frangible bullets was characterized in an effort to aid predictions of impact performance of these projectiles with soft body armor through finite element simulations. Fracture surfaces and failed cross sections were examined via light optical and scanning electron microscopy and related to the composite bullet microstructure. Two types of samples were analyzed: (1) those used in quasi-static and dynamic diametral compression testing to determine the effective properties of the composite material, and (2) bullets discharged into soft body armor. Two primary microscopic fracture mechanisms were cleavage and intergranular fracture of the Cu-Sn intermetallic compounds, epsilon(Cu3Sn) and eta(Cu6Sn5), which joined the un-bonded copper particles in the composite microstructure. Microvoid coalescence of copper metal was also observed, though infrequently, in places where the spacing between intermetallic phase clusters on a single copper particle was typically no greater than 30 mu m. These modes of failure were similar between the samples used in the mechanical testing methods and the discharged bullets. From these results, it is reasonable to assume that the failure strength data measured via diametral compression testing can be used to predict the onset of bullet failure on impact during finite element simulations.
机译:对Cu-Sn易碎子弹的破坏行为进行了表征,旨在通过有限元模拟来帮助预测这些带有软质防弹衣的弹丸的冲击性能。通过光学和扫描电子显微镜检查断裂表面和断面,并与复合子弹的微观结构有关。分析了两种类型的样品:(1)用于准静态和动态径向压缩测试的样品,以确定复合材料的有效性能;(2)将子弹排放到防弹衣中。铜-锡金属互化物化合物ε(Cu3Sn)和η(Cu6Sn5)的分裂和晶间断裂是两个主要的微观断裂机理,它们将未结合的铜颗粒连接到复合组织中。尽管在少数情况下,在单个铜粒子上金属间相簇之间的间距通常不大于30μm的地方,也观察到铜金属的微空隙聚结。在机械测试方法中使用的样品和排出的子弹之间,这些破坏模式相似。根据这些结果,可以合理地假设,通过径向压缩测试测得的破坏​​强度数据可用于预测有限元模拟期间子弹破坏对冲击的影响。

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