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An interfacial energy incorporated couple stress crystal plasticity and the finite element simulation of grain subdivision

机译:结合了界面能量的应力晶体可塑性和晶粒细化的有限元模拟

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A couple stress crystal plasticity formulation that incorporates interfacial couple stress energy was proposed in terms of the virtual work-rate principle for finite element method. By applying the assumed constitutive models of couple stress at the grain boundary as well as the grain interior, finite element simulations were conducted for various crystal models, with different grain subdivision models to examine how plastic deformation work is affected by grain subdivision from the interfacial couple stress energy effect.Finite element simulation results showed that the amount of predicted plastic deformation work depends on grain subdivision, and that the amount of work can be minimized for a particular grain subdivision. We inferred from the simulation results that actual grain subdivision might correspond to the minimum amount of plastic deformation work and, if this correlation is validated, actual grain subdivision might be predicted based on the interfacial energy incorporated couple stress crystal plasticity.
机译:根据有限元方法的虚拟工作速率原理,提出了结合界面耦合应力能量的耦合应力晶体塑性公式。通过在晶粒边界和晶粒内部应用假定的耦合应力本构模型,对各种晶体模型进行了有限元模拟,并使用了不同的晶粒细分模型,以研究塑性变形工作如何受到界面耦合对晶粒细分的影响。有限元模拟结果表明,预测的塑性变形功的数量取决于晶粒细分,并且可以将特定晶粒细分的功数量最小化。我们从仿真结果中推断出,实际的晶粒细分可能对应于塑性变形工作的最小量,并且,如果这种关联性得到验证,则可以基于结合了应力晶体塑性的界面能来预测实际的晶粒细分。

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