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Dynamic thermo-mechanical coupling and size effects in finite shape memory alloy nanostructures

机译:有限形状记忆合金纳米结构中的动态热力耦合和尺寸效应

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In this paper, the dynamics of martensitic transformations in shape memory alloy (SMA) constrained finite nanostructures is studied using a phase field model with the Ginzburg-Landau free energy. The nonlinear coupled thermo-mechanical properties in SMAs have been extensively studied in the bulk case. However at the nanoscale the thermal physics has been usually neglected in a study of SMA properties, and most of the model developments have been carried out under the assumption of isothermal phase transformations. The main aim of this paper is to develop a model that couples the thermal physics and the mechanical dynamics to study the influence of such coupling on the mechanical properties of SMA nanostructures. The developed model is solved using the finite element method. Analyzing FePd alloy nanowires, we observe a steeper slope of the stress-strain curve in the coupled thermo-mechanical case due to temperature evolution during the loading-unloading cycle of such nanostructures. We also observe the martensitic suppression phenomenon in constrained nanowires and nanograms on cooling. We have developed a semi-analytical model to predict a critical size at the onset of martensitic suppression. The semi-analytical model predicts a critical size which is in a good agreement with the numerical results for FePd nanograins.
机译:在本文中,使用具有Ginzburg-Landau自由能的相场模型研究了形状记忆合金(SMA)约束的有限纳米结构中马氏体转变的动力学。在整体情况下,对SMA中的非线性耦合热机械特性进行了广泛的研究。然而,在纳米尺度上,在研究SMA特性时通常忽略了热物理学,并且大多数模型开发是在等温相变的假设下进行的。本文的主要目的是建立一个将热物理和机械动力学耦合的模型,以研究这种耦合对SMA纳米结构力学性能的影响。使用有限元方法求解开发的模型。分析FePd合金纳米线,我们观察到在这种热-机械耦合情况下,应力-应变曲线的斜率较陡,这是由于在这种纳米结构的加载/卸载循环过程中温度变化所致。我们还观察到约束纳米线和纳克在冷却时的马氏体抑制现象。我们已经开发了一个半分析模型来预测马氏体抑制开始时的临界尺寸。半分析模型预测的临界尺寸与FePd纳米颗粒的数值结果非常吻合。

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