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A thermomechanical constitutive model for superelastic SMA wire with strain-rate dependence

机译:应变速率相关的超弹性SMA线的热机械本构模型

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The recent increased use of shape memory alloys (SMAs) for civil engineering applications manifests the need for a high-fidelity constitutive model which considers the material's strong dependence on the loading rate. This paper presents an improved thermomechanical constitutive model with strain-rate dependence for predicting the uniaxial superelastic behavior of shape memory alloys. The proposed constitutive model, which is formulated within a thermomechanical framework, is comprised of three principal parts: a mechanical law, an energy balance equation, and a transformation kinetics rule. The analytical derivation of the model and experimental test results for superelastic NiTi wires are described in this paper. The prediction made by this phenomenological model shows good agreement with experimental data for superelastic NiTi wires at various loading rates. Through a comparison with experimental results, the proposed constitutive model was evaluated for several key characteristics of superelastic behavior such as reduction of hysteresis area, increase of transformation plateau, and temperature change with strain rate. The proposed constitutive model offers a useful tool for the design and simulation of superelastic SMA-based devices in civil engineering applications.
机译:形状记忆合金(SMA)在土木工程应用中的最新使用表明,需要一种高保真本构模型,该模型考虑了材料对加载速率的强烈依赖性。本文提出了一种改进的具有应变速率依赖性的热机械本构模型,用于预测形状记忆合金的单轴超弹性行为。拟议的本构模型是在热力学框架内制定的,它由三个主要部分组成:机械定律,能量平衡方程和变换动力学规则。本文描述了超弹性镍钛丝模型的解析推导和实验测试结果。这种现象学模型所作的预测表明,在不同的加载速率下,超弹性镍钛丝的实验数据与实验数据吻合良好。通过与实验结果进行比较,对所提出的本构模型进行了评估,以评估其超弹性行为的几个关键特征,例如磁滞面积的减少,相变平台的增加以及应变速率的温度变化。所提出的本构模型为土木工程应用中基于超弹性SMA的设备的设计和仿真提供了有用的工具。

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