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Thermodynamic and relaxation-based modeling of the interaction between martensitic phase transformations and plasticity

机译:马氏体相变与可塑性之间相互作用的热力学和松弛模型

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This paper focuses on the issue plasticity within the framework of a micromechanical model for single-crystal shape-memory alloys. As a first step towards a complete micromechanical formulation of such models, we work with classical J_2-von Mises-type plasticity for simplicity. The modeling of martensitic phase transitions is based on the concept of energy relaxation (quasiconvexification) in connection with evolution equations derived from inelastic potentials. Crystallographic considerations lead to the derivation of Bain strains characterizing the transformation kinematics. The model is derived for arbitrary numbers of martensite variants and thus can be applied to any shape-memory material such as CuAINi or NiTi. The phase transition model captures effects like tension/compression asymmetry and transformation induced anisotropy. Additionally, attention is focused on the interaction between phase transformations and plasticity in terms of the inheritance of plastic strain. The effect of such interaction is demonstrated by elementary numerical studies.
机译:本文关注于单晶形状记忆合金的微机械模型框架内的可塑性问题。作为此类模型的完整微机械公式化的第一步,我们为了简单起见使用经典的J_2-von Mises型可塑性。马氏体相变的建模基于能量松弛(准凸化)的概念,并结合了从非弹性势中得出的演化方程。晶体学上的考虑导致了表征转变运动学的贝恩​​应变的推导。该模型是针对任意数量的马氏体变体派生的,因此可以应用于任何形状记忆材料,例如CuAINi或NiTi。相变模型捕获了诸如拉伸/压缩不对称和变换引起的各向异性之类的效应。另外,根据塑性应变的继承,注意力集中在相变与可塑性之间的相互作用上。初步的数值研究证明了这种相互作用的效果。

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