Prediction of microscale plastic strain rate fields in two-phase composites subjected to an arbitrary macroscale strain rate using the materials knowledge system framework

Prediction of microscale plastic strain rate fields in two-phase composites subjected to an arbitrary macroscale strain rate using the materials knowledge system framework
复制标题

使用材料知识系统框架预测任意宏观应变率下两相复合材料中的微观塑性应变率场

DOI:
10.1016/j.actamat.2017.09.016
复制
发表时间:
2017
期刊:
影响因子:
9.4
通讯作者:
S. Kalidindi
S. Kalidindi
中科院分区:
材料科学1区
文献类型:
--
作者:
David Montes Oca de Zapiain;E. Popova;S. Kalidindi

文献摘要

被引文献

相似文献

本文提出了一种数据驱动的降阶模型,用于预测各向同性两相复合材料在任意宏观应变率张量作用下塑性应变率张量的微观空间分布。该模型是使用称为材料知识系统(MKS)的定位链接框架建立的,该框架已被证明具有准确性和低计算成本的显着组合。在之前的工作中,MKS框架被成功地用于预测多相复合材料在特定宏观应变率张量作用下的局部应变率场。在这项工作中,MKS框架被扩展到包括所有可应用的宏观应变率张量的完整集合。这是通过开发新的表示来实现的,这些表示允许在单位对称无迹二阶张量的完整空间上对定位核进行参数化,并使用所需的快速计算策略实现它们。在这项工作中产生的MKS定位联动被校准并验证了微尺度有限元模型的结果。
In this work, a data-driven reduced-order model is presented to predict the microscale spatial distribution of the plastic strain rate tensor in an isotropic two-phase composite subjected to an arbitrary macroscopically imposed strain rate tensor. This model was built using the framework of localization linkages called Material Knowledge Systems (MKS), which has been demonstrated to exhibit a remarkable combination of accuracy and low computational cost. In prior work, the MKS framework was successfully used to predict the local strain rate fields in multiphase composites subjected to a selected macroscale strain rate tensor. In this work, the MKS framework is extended to include the complete set of all macroscale strain rate tensors that could be applied. This is accomplished by developing novel representations that allow a parametrization of the localization kernel over the complete space of unit symmetric traceless second-rank tensors and implementing them with the required fast computational strategies. The MKS localization linkage produced in this work was calibrated and validated to results from microscale finite element models.