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PREDICTING MG STRENGTH FROM FIRST-PRINCIPLES: SOLID-SOLUTION STRENGTHENING, SOFTENING, AND CROSS-SLIP

机译:预测第一原理的Mg强度:固溶强化,软化和交叉滑动

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Predictive modeling of strength from first-principles electronic structure methods offers great promise to inform Mg alloy design. Simulating the mechanical behavior for new alloys requires an understanding of mechanisms for deformation at atomic-length scales, with accurate chemistry, extended to larger length- and time-scales. To design ductile Mg alloys, we identify solutes that strengthen basal slip and increase cross-slip. First-principles modeling of dislocations predict dislocation motion under stress through a field of solutes at a finite temperature. First-principles flexible boundary conditions compute accurate core structures of basal and prismatic dislocations, and dislocation/solute interactions. We develop new models to predict the solute-strengthening for basal dislocations; cross-slip from basal- to prismatic-slip for a-type screw dislocations; and cross-slip stress with solutes. First-principles data provides insight into the response of dislocations to solutes and quantitative data to build new predictive models.
机译:从第一原理电子结构方法的预测模型从电子结构方法提供了通知MG合金设计的许可。模拟新合金的机械行为需要了解原子长度的变形机制,具有精确的化学,延伸到更大的长度和时间尺度。为了设计延性Mg合金,我们识别加强基础滑动并增加滑滑的溶质。脱位的第一原理建模预测了通过溶质的压力下的脱位运动在有限温度下。第一原理柔性边界条件计算基础和棱镜脱位的准确核心结构,以及位错/溶质相互作用。我们开发新型模型,以预测基础脱位的溶质增强;型螺钉脱位的基础 - 棱镜滑动的滑雪;和溶质的交叉压力。第一原理数据提供了洞察脱位响应求解和定量数据以构建新的预测模型。

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