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Rate-dependent cyclic deformation of super-elastic NiTi shape memory alloy: Thermo-mechanical coupled and physical mechanism-based constitutive model

机译:超弹性NiTi形状记忆合金的速率依赖性循环变形:基于热机械耦合和物理机制的本构模型

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摘要

A three-dimensional (3D) thermo-mechanical coupled and physical mechanism-based constitutive model is phenomenologically constructed to describe the rate-dependent cyclic deformation of super-elastic NiTi shape memory alloy (SMA). Two inelastic mechanisms, i.e., martensite transformation and dislocation slipping in austenite phase are included in the proposed model. The thermodynamic driving forces of two inelastic mechanisms, the internal heat production during cyclic deformation and the thermodynamic constraints on constitutive equations are obtained by the Clausius's dissipative inequality and constructed Helmholtz's free energy. The interactions between the martensite transformation and dislocation slipping in austenite phase are considered. The evolution equations of internal variables controlling the degeneration of super-elasticity are set to be dependent on the current density of dislocation. Finally, the proposed 3D constitutive model is reduced to its one-dimensional (1D) form with an assumption of uniform temperature field in the cross-section of the tested micro-tube, and its capability to describe the uniaxial rate-dependent cyclic deformation of super-elastic NiTi SMA micro-tube is verified by comparing the predicted results with the corresponding experimental ones. (C) 2015 Elsevier Ltd. All rights reserved.
机译:基于现象学构建了三维(3D)热机械耦合和基于物理机制的本构模型,以描述速率依赖性循环变形的超弹性NiTi形状记忆合金(SMA)。所提出的模型包括两种非弹性机制,即马氏体相变和奥氏体相中的位错滑移。通过克劳修斯的耗散不等式和构造的亥姆霍兹自由能,获得了两种非弹性机制的热力学驱动力,即循环变形时的内部热量产生和本构方程的热力学约束。考虑了马氏体相变与位错滑移在奥氏体相之间的相互作用。将控制超弹性退化的内部变量的演化方程设置为取决于当前的位错密度。最后,假设所测试的微管横截面具有均匀的温度场,并且拟定的3D本构模型可以简化为一维(1D)形式,并且能够描述单轴速率相关的循环变形。通过将预测结果与相应的实验结果进行比较,验证了超弹性NiTi SMA微管。 (C)2015 Elsevier Ltd.保留所有权利。

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