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Multiresolution continuum modeling of micro-void assisted dynamic adiabatic shear band propagation

机译:微空隙辅助动态绝热剪切带传播的多分辨率连续模型

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摘要

A thermal-mechanical multiresolution continuum theory is applied within a finite element framework to model the initiation and propagation of dynamic shear bands in a steel alloy. The shear instability and subsequent stress collapse, which are responsible for dynamic adiabatic shear band propagation, are captured by including the effects of shear driven microvoid damage in a single constitutive model. The shear band width during propagation is controlled via a combination of thermal conductance and an embedded evolving length scale parameter present in the multiresolution continuum formulation. In particular, as the material reaches a shear instability and begins to soften, the dominant length scale parameter (and hence shear band width) transitions from the alloy grain size to the spacing between micro-voids. Emphasis is placed on modeling stress collapse due to micro-void damage while simultaneously capturing the appropriate scale of inhomogeneous deformation. The goal is to assist in the microscale optimization of alloys which are susceptible to shear band failure.
机译:在有限元框架内应用热力学多分辨率连续体理论来模拟钢合金中动态剪切带的产生和传播。通过在单个本构模型中包括剪切驱动的微孔损伤的影响,可以捕获引起动态绝热剪切带传播的剪切不稳定性和随后的应力崩溃。传播过程中的剪切带宽度是通过热导和多分辨率连续体公式中存在的嵌入的演化长度比例参数的组合来控制的。特别地,当材料达到剪切不稳定性并开始软化时,主要的长度尺度参数(以及剪切带宽度)从合金晶粒尺寸过渡到微孔之间的间距。重点放在因微孔破坏而造成的应力崩溃建模上,同时捕获适当比例的不均匀变形。目的是帮助对易发生剪切带破坏的合金进行微观优化。

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