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A finite-strain constitutive model for anisotropic shape memory alloys

机译:各向异性形状记忆合金的有限应变本构模型

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摘要

This paper presents a three-dimensional (3D) model to simulate self -accommodation, anisotropic martensitic transformation/orientation, reorientation of martensite variants, asymmetry in tension-compression and phase-change-dependent elastic properties in shape memory alloys (SMAs) within a finite-stain regime. The model is developed based on a multiplicative decomposition of the deformation gradient into elastic and inelastic parts by satisfying the second law of thermodynamics in sense of ClausiusDuhem inequality. The mathematical equations are derived in terms of symmetric tensors simplifying the constitutive relations. The finite-strain model is linearized into the small-strain regime preserving the materially non-linear feature. A description of the time-discrete form of the proposed model and its associated solution algorithm is presented. Numerical simulations of the mechanical behaviors of highly textured NiTi 3D printed parts, wires and helical springs subjected to simple and complex loadings are performed and compared with experiments. Qualitative and quantitative correlation is observed between simulations and experiments to verify the predictive capabilities of the model and the solution procedure. It is also shown that the finite-strain modeling is essential for accurate prediction of SMA behaviors when deformations are prominent. Due to the absence of similar models in the specialized literature, this paper will fill a gap in the state of the art of this problem, and provide a computationally efficient tool for design and analysis of highly-textured SMA devices under complex loadings. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文提出了一个三维(3D)模型来模拟形状记忆合金(SMAs)中的自适应,各向异性马氏体转变/取向,马氏体变体的重新取向,张力压缩的不对称性和相变相关的弹性。有限染色制度。该模型是在满足ClausiusDuhem不等式意义上满足热力学第二定律的基础上,将变形梯度乘以分解为弹性和非弹性部分而开发的。数学方程是根据对称张量导出的,简化了本构关系。将有限应变模型线性化为保留了材料非线性特征的小应变形式。提出了该模型的时间离散形式及其相关求解算法的描述。进行了高度纹理化的NiTi 3D打印零件,金属丝和螺旋弹簧的机械行为的数值模拟,并对其进行了简单和复杂的加载。在仿真和实验之间观察到定性和定量的相关性,以验证模型和求解过程的预测能力。还表明,有限变形建模对于在变形显着时准确预测SMA行为至关重要。由于专业文献中缺乏相似的模型,因此本文将填补该问题的最新发展水平,并为复杂负载下高结构化SMA设备的设计和分析提供一种计算有效的工具。 (C)2017 Elsevier Ltd.保留所有权利。

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