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首页> 外文期刊>International Journal of Plasticity >A multi-axial, multimechanism based constitutive model for the comprehensive representation of the evolutionary response of SMAs under general thermomechanical loading conditions
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A multi-axial, multimechanism based constitutive model for the comprehensive representation of the evolutionary response of SMAs under general thermomechanical loading conditions

机译:基于多轴,多机理的本构模型,用于全面表示一般热机械载荷条件下SMA的演化响应

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摘要

We present a fully general, three dimensional, constitutive model for Shape Memory Alloys (SMAs), aimed at describing all of the salient features of SMA evolutionary response under complex thermomechanical loading conditions. In this, we utilize the mathematical formulation we have constructed, along with a single set of the model's material parameters, to demonstrate the capturing of numerous responses that are experimentally observed in the available SMA literature. This includes uniaxial, multi-axial, proportional, non-proportional, monotonic, cyclic, as well as other complex thermomechanical loading conditions, in conjunction with a wide range of temperature variations. The success of the presented model is mainly attributed to the following two main factors. First, we use multiple inelastic mechanisms to organize the exchange between the energy stored and energy dissipated during the deformation history. Second, we adhere strictly to the well established mathematical and thermodynamical requirements of convexity, associativity, normality, etc. in formulating the evolution equations governing the model behavior, written in terms of the generalized internal stress/strain tensorial variables associated with the individual inelastic mechanisms. This has led to two important advantages: (a) it directly enabled us to obtain the limiting/critical transformation surfaces in the spaces of both stress and strain, as importantly required in capturing SMA behavior; (b) as a byproduct, this also led, naturally, to the exhibition of the apparent deviation from normality, when the transformation strain rate vectors are plotted together with the surfaces in the space of external/global stresses, that has been demonstrated in some recent multi-axial, non-proportional experiments.
机译:我们为形状记忆合金(SMA)提供了一个完全通用的三维本构模型,旨在描述复杂热机械载荷条件下SMA演化响应的所有显着特征。在本文中,我们利用已构建的数学公式以及该模型的一组材料参数来证明捕获了可用SMA文献中实验观察到的众多响应。这包括单轴,多轴,比例,非比例,单调,循环以及其他复杂的热机械加载条件,以及宽范围的温度变化。所提出模型的成功主要归因于以下两个主要因素。首先,我们使用多种非弹性机制来组织变形过程中存储的能量与耗散的能量之间的交换。其次,在制定控制模型行为的演化方程时,我们严格遵守已建立的凸度,缔合性,正态性等数学和热力学要求,并用与各个非弹性机制相关的广义内应力/应变张量变量来表示。这带来了两个重要的优点:(a)它直接使我们能够在应力和应变的空间中获得极限/临界转变表面,这是捕获SMA行为的重要条件; (b)作为副产品,当在外部/整体应力的空间中将变换应变率矢量与表面一起绘制时,这自然也导致表现出明显的偏离正态的现象。最近的多轴,非比例实验。

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