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Supershear damage propagation and sub-Rayleigh crack growth from edge- on impact: A peridynamic analysis

机译:冲击作用下超剪切损伤的传播和次瑞利裂纹的扩展:绕动力学分析

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摘要

Edge-on impact experiments on AlON, a transparent ceramic with superior ballistic performance, show combined intergranular and transgranular fracture. An initial fast-propagating damage front transitions into slower-propagating localized cracks. We develop a peridynamic model for polycrystalline AlON to investigate the failure evolution observed in experiments. We use a computational polycrystalline structure with the same average grain size as the samples used in experiments. The peridynamic model helps explain the reasons behind the observed failure front supershear propagation speed (higher than-If times the shear wave speed), and the subsequent transition to sub-Rayleigh propagating localized cracks. The computed propagation speeds for the damage front, and the cracks that emanate from it, match very well those measured in experiments. Elastic anisotropy, material microstructure, and brittle failure are the only ingredients used here to determine damage evolution in edge-on impact on brittle polycrystalline materials, under no confinement. Other possible dissipation mechanisms, like twinning, plasticity, friction, are not included in the model. These are likely second-order effects in the evolution of damage and failure for this material and at these impact speeds.
机译:AlON(一种具有优异弹道性能的透明陶瓷)的边缘碰撞实验显示出晶界和跨晶相断裂。最初的快速传播的损伤前沿过渡为缓慢传播的局部裂纹。我们开发了多晶AlON的绕动力学模型,以研究在实验中观察到的失效演化。我们使用与实验中使用的样品具有相同平均晶粒尺寸的计算多晶结构。围岩动力学模型有助于解释观察到的破坏前超剪切传播速度(高于-If乘剪切波速度)以及随后过渡到次Rayleigh传播局部裂纹的原因。计算得出的损伤前沿传播速度以及由此产生的裂纹与实验中测得的速度非常匹配。弹性各向异性,材料微观结构和脆性破坏是在没有限制的情况下用于确定边缘对脆性多晶材料的冲击演变的唯一成分。模型中不包括其他可能的耗散机制,例如孪生,可塑性,摩擦。在这种材料的破坏速度和破坏速度下,这些可能是二次破坏效应。

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