A Three-Dimensional Constitutive Model for Polycrystalline Shape Memory Alloys Under Large Strains Combined With Large Rotations

Lei Xu, T. Baxevanis, D. Lagoudas
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引用次数: 6

Abstract

Shape Memory Alloys (SMAs), known as an intermetallic alloys with the ability to recover its predefined shape under specific thermomechanical loading, has been widely aware of working as actuators for active/smart morphing structures in engineering industry. Because of the high actuation energy density of SMAs, compared to other active materials, structures integrated with SMA-based actuators has high advantage in terms of tradeoffs between overall structure weight, integrity and functionality. The majority of available constitutive models for SMAs are developed within infinitesimal strain regime. However, it was reported that particular SMAs can generate transformation strains nearly up to 8%–10%, for which the adopted infinitesimal strain assumption is no longer appropriate. Furthermore, industry applications may require SMA actuators, such as a SMA torque tube, undergo large rotation deformation at work. Combining the above two facts, a constitutive model for SMAs developed on a finite deformation framework is required to predict accurate response for these SMA-based actuators under large deformations. A three-dimensional constitutive model for SMAs considering large strains with large rotations is proposed in this work. This model utilizes the logarithmic strain as a finite strain measure for large deformation analysis so that its rate form hypoelastic constitutive relation can be consistently integrated to deliver a free energy based hyper-elastic constitutive relation. The martensitic volume fraction and the second-order transformation strain tensor are chosen as the internal state variables to characterize the inelastic response exhibited by polycrystalline SMAs. Numerical experiments for basic SMA geometries, such as a bar under tension and a torque tube under torsion are performed to test the capabilities of the newly proposed model. The presented formulation and its numerical implementation scheme can be extended in future work for the incorporation of other inelastic phenomenas such as transformation-induced plasticity, viscoplasticity and creep under large deformations.
多晶形状记忆合金大应变大旋转下的三维本构模型
形状记忆合金(sma)是一种金属间合金,具有在特定的热机械载荷下恢复其预定形状的能力,在工程工业中被广泛认为是主动/智能变形结构的致动器。由于sma的致动能量密度高,与其他活性材料相比,与基于sma的致动器集成的结构在整体结构重量、完整性和功能之间的权衡方面具有很高的优势。大多数可用的sma本构模型都是在无穷小应变范围内建立的。然而,据报道,特定sma可以产生接近8%-10%的转变应变,因此采用的无穷小应变假设不再适用。此外,工业应用可能需要SMA致动器,如SMA扭矩管,在工作时承受较大的旋转变形。结合上述两个事实,需要在有限变形框架上建立sma的本构模型,以准确预测这些基于sma的致动器在大变形下的响应。本文提出了考虑大应变大旋转的sma三维本构模型。该模型利用对数应变作为大变形分析的有限应变测度,使得其速率形式的低弹性本构关系可以一致地集成为基于自由能的超弹性本构关系。选取马氏体体积分数和二阶变换应变张量作为内部状态变量来表征多晶sma的非弹性响应。对基本的SMA几何形状,如受拉伸的杆和受扭转的扭矩管进行了数值实验,以测试新提出的模型的能力。提出的公式及其数值实现方案可以在今后的工作中推广,以纳入其他非弹性现象,如变形诱发塑性、粘塑性和大变形下的蠕变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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