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首页> 外文期刊>Journal of engineering materials and technology >Numerical Study of Impact Penetration Shearing Employing Finite Strain Viscoplasticity Model Incorporating Adiabatic Shear Banding
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Numerical Study of Impact Penetration Shearing Employing Finite Strain Viscoplasticity Model Incorporating Adiabatic Shear Banding

机译:含绝热剪切带的有限应变粘塑性模型冲击穿透剪切的数值研究

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This work brings forward a twofold contribution relevant to the adiabatic shear banding (ASB) process as a part of dynamic plasticity of high-strength metallic materials. The first contribution is a reassessment of a three-dimensional finite deformation model starting from a specific scale postulate and devoted to cover a wide range of dissipative phenomena, including ASB-related material instabilities (strong softening prefailure stage). The model, particularly destined to deal with impacted structures was first detailed by (Longere et al. 2003, "Modelling Adiabatic Shear Banding Via Damage Mechanics Approach, " Arch. Mech., 55, pp. 3-38; 2005, "Adiabatic Shear Banding Induced Degradation in a Thermo-Elastic/Viscoplastic Material Under Dynamic Loading," Int. J. Impact Eng., 32, pp. 285-320). The second novel contribution concerns numerical solution of a genuine ballistic penetration problem employing the above model for a target plate material. The ASB trajectories are shown to follow a multistage history and complex distribution pattern leading finally to plugging failure mechanism. The corresponding analysis and related parametric study are intended to put to the test the pertinency of the model as an advanced predictive tool for complex shock related problems.
机译:这项工作提出了与绝热剪切带(ASB)工艺有关的双重贡献,这是高强度金属材料动态可塑性的一部分。第一个贡献是从一个特定的尺度开始重新评估了三维有限变形模型,该模型致力于涵盖各种耗散现象,包括与ASB相关的材料不稳定性(强烈的软化失效前阶段)。该模型(尤其是处理冲击结构的模型)首先被详细描述(Longere等人,2003年,“通过损伤力学方法模拟绝热剪切带,” Arch。Mech。,55,第3-38页; 2005年,“绝热剪切”)。在动态载荷下条带引起的热弹性/粘塑性材料的降解,” Int.J.Impact Eng。,32,第285-320页。第二个新颖的贡献涉及对目标板材使用上述模型的真正弹道穿透问题的数值解。所示的ASB轨迹遵循多阶段历史和复杂的分布模式,最终导致堵塞失效机制。相应的分析和相关的参数研究旨在对模型的相关性进行测试,以作为复杂冲击相关问题的高级预测工具。

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