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Simulation of ballistic performance of coarse-grained metals strengthened by nanotwinned regions

机译:纳米孪晶区强化的粗粒金属的弹道性能模拟

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Coarse-grained (CG) metals strengthened by nanotwinned (NT) regions have both ultrahigh strength and good ductility. The presence of the NT regions contributes to their ultrahigh strength, while their good ductility is attributed to the recrystallized coarse grains. These characteristics make them a potential candidate for bullet-proof material. In this paper, numerical simulations based on the mechanism-based strain gradient plasticity and the Johnson-Cook failure criterion are carried out to investigate the effects of twin spacing and microstructural attributes on the ballistic performance of CG copper strengthened by NT regions. We investigate the performance of fourteen idealized microstructures, and find that smaller twin spacing and regular distribution of NT regions are more conducive to the promotion of the ballistic performance. We also uncover that the role of the shape of NT regions is significantly affected by twin spacing. Furthermore, we make a comparison with its CG counterpart without NTs, and find that microstructures with array arrangement of NT regions have higher limit velocities and smaller relative displacements than the single phase CG structure. This makes them a strong candidate for helmets and other personal protective equipments. It is believed that the simulated results could provide useful insights into the development of this advanced class of metals for ballistic protection.
机译:由纳米孪晶(NT)区域增强的粗晶粒(CG)金属具有超高强度和良好的延展性。 NT区域的存在有助于它们的超高强度,而它们的良好延展性归因于重结晶的粗晶粒。这些特性使它们成为防弹材料的潜在候选者。本文基于基于机理的应变梯度可塑性和Johnson-Cook破坏准则进行了数值模拟,以研究孪晶间距和微观结构属性对NT区增强的CG铜弹道性能的影响。我们研究了十四种理想微结构的性能,发现较小的孪晶间距和NT区的规则分布更有利于弹道性能的提升。我们还发现,NT区域形状的作用受孪生间距的影响很大。此外,我们将其与没有NTs的CG对应物进行了比较,发现与NT相阵列结构相比,具有NT区阵列排列的微结构具有更高的极限速度和相对位移。这使它们成为头盔和其他个人防护设备的理想之选。可以相信,模拟结果可以为这种先进的防弹金属的开发提供有用的见解。

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