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Spatial strain correlations,machine learning,and deformation history in crystal plasticity

机译:水晶可塑性的空间应变相关,机器学习和变形历史

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摘要

Systems far from equilibrium respond to probes in a history-dependent manner.The prediction of the system response depends on either knowing the details of that history or being able to characterize all the current system properties.In crystal plasticity,various processing routes contribute to a history dependence that may manifest itself through complex microstructural deformation features with large strain gradients.However,the complete spatial strain correlations may provide further predictive information.In this paper,we demonstrate an explicit example where spatial strain correlations can be used in a statistical manner to infer and classify prior deformation history at various strain levels.The statistical inference is provided by machine-learning techniques.As source data,we consider uniaxially compressed crystalline thin films generated by two dimensional discrete dislocation plasticity simulations,after prior compression at various levels.Crystalline thin films at the nanoscale demonstrate yield-strength size effects with very noisy mechanical responses that produce a serious challenge to learning techniques.We discuss the influence of size effects and structural uncertainty to the ability of our approach to distinguish different plasticity regimes.
机译:远离均衡的系统以历史依赖的方式响应探针。系统响应的预测取决于了解该历史的细节或能够表征所有当前系统属性。在晶体可塑性中,各种处理路线有助于可以通过具有大应变梯度的复杂微结构变形特征来表现出本身的历史依赖性。然而,完全的空间应变相关性可以提供进一步的预测信息。在本文中,我们演示了一种明确的示例,其中空间应变相关可以以统计方式使用在各种应变水平下推断和分类先前的变形历史。通过机器学习技术提供统计推断。源数据,我们考虑在不同级别的预压制后通过二维离散位错塑性模拟产生的单轴压缩晶体薄膜.Crystalline在纳米阶段的薄膜E表现出屈服强度尺寸的影响,具有非常嘈杂的机械响应,对学习技术产生了严峻挑战。我们讨论了大小效应和结构性不确定性对利用不同可塑性制度的方法的影响。

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