材料科学
晶体孪晶
均质化(气候)
晶体塑性
可塑性
切线
有限元法
切线模量
模数
多尺度建模
应变率
微观力学
复合材料
机械
结构工程
微观结构
几何学
复合数
数学
生物多样性
生态学
计算化学
化学
物理
工程类
生物
作者
Mohammadreza Yaghoobi,John E. Allison,Veera Sundararaghavan
标识
DOI:10.1016/j.ijplas.2019.102653
摘要
A multiscale scheme is presented here to capture the twinning and detwinning mechanisms during cyclic loading of HCP polycrystals. In the current framework, the crystal plasticity finite element (CPFE) method is employed at the microstructural scale. The response of twinned regions at a material point is calculated using a novel homogenization scheme via a Taylor-type model. The homogenized behavior is then used in the CPFE to obtain the response of a polycrystal. An efficient rate-independent crystal plasticity model that has been incorporated into the open source PRISMS-Plasticity software is introduced here to capture the response of the twinned region. Accordingly, the corresponding algorithmic tangent modulus is derived. This multiscale scheme is validated against data available for the cyclic response of Mg alloy ZK60A. The results show that the multiscale model can capture the key elements of the sample response observed during the experiment.
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