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Multiscale Modeling of Structurally-Graded Materials Using Discrete Dislocation Plasticity Models and Continuum Crystal Plasticity Models

机译:使用离散位错可塑性模型和连续晶体可塑性模型对结构梯度材料进行多尺度建模

摘要

A multiscale modeling methodology that combines the predictive capability of discrete dislocation plasticity and the computational efficiency of continuum crystal plasticity is developed. Single crystal configurations of different grain sizes modeled with periodic boundary conditions are analyzed using discrete dislocation plasticity (DD) to obtain grain size-dependent stress-strain predictions. These relationships are mapped into crystal plasticity parameters to develop a multiscale DD/CP model for continuum level simulations. A polycrystal model of a structurally-graded microstructure is developed, analyzed and used as a benchmark for comparison between the multiscale DD/CP model and the DD predictions. The multiscale DD/CP model follows the DD predictions closely up to an initial peak stress and then follows a strain hardening path that is parallel but somewhat offset from the DD predictions. The difference is believed to be from a combination of the strain rate in the DD simulation and the inability of the DD/CP model to represent non-monotonic material response.
机译:开发了一种结合了离散位错可塑性的预测能力和连续体晶体可塑性的计算效率的多尺度建模方法。使用离散位错可塑性(DD)分析以周期性边界条件为模型的不同晶粒尺寸的单晶构型,以获得晶粒尺寸相关的应力应变预测。将这些关系映射到晶体可塑性参数中,以开发用于连续水平模拟的多尺度DD / CP模型。开发,分析了具有结构渐变微观结构的多晶模型,并将其用作比较多尺度DD / CP模型和DD预测的基准。多尺度DD / CP模型紧随DD预测直至初始峰值应力,然后遵循平行于DD预测但略有偏移的应变硬化路径。认为差异是由于DD模拟中的应变率和DD / CP模型无法表示非单调材料响应的组合。

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