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A micromechanics-inspired constitutive model for shape-memory alloys that accounts for initiation and saturation of phase transformation

机译:形状记忆合金的微力学启发性本构模型,考虑了相变的发生和饱和

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摘要

A constitutive model to describe macroscopic elastic and transformation behaviors of polycrystalline shape-memory alloys is formulated using an internal variable thermodynamic framework. In a departure from prior phenomenological models, the proposed model treats initiation, growth kinetics, and saturation of transformation distinctly, consistent with physics revealed by recent multi-scale experiments and theoretical studies. Specifically, the proposed approach captures the macroscopic manifestations of three micromechanial facts, even though microstructures are not explicitly modeled: (1) Individual grains with favorable orientations and stresses for transformation are the first to nucleate martensite, and the local nucleation strain is relatively large. (2) Then, transformation interfaces propagate according to growth kinetics to traverse networks of grains, while previously formed martensite may reorient. (3) Ultimately, transformation saturates prior to 100% completion as some unfavorably-oriented grains do not transform; thus the total transformation strain of a polycrystal is modest relative to the initial, local nucleation strain. The proposed formulation also accounts for tension–compression asymmetry, processing anisotropy, and the distinction between stress-induced and temperature-induced transformations. Consequently, the model describes thermoelastic responses of shape-memory alloys subject to complex, multi-axial thermo-mechanical loadings. These abilities are demonstrated through detailed comparisons of simulations with experiments.
机译:利用内部可变热力学框架,建立了描述多晶形状记忆合金宏观弹性和相变行为的本构模型。与先前的现象学模型不同,拟议的模型明显地处理了引发,生长动力学和转变饱和,这与最近的多尺度实验和理论研究揭示的物理学相一致。具体而言,即使未对微观结构进行显式建模,所提出的方法也可以捕获三个微机械事实的宏观表现形式:(1)具有良好取向和相变应力的单个晶粒最先使马氏体成核,并且局部成核应变相对较大。 (2)然后,相变界面根据生长动力学传播到晶粒的遍历网络,而先前形成的马氏体可能会重新定向。 (3)最终,由于一些取向不好的晶粒不发生转变,转变在100%完成之前就饱和了;因此,相对于初始的局部成核应变,多晶的总转变应变是中等的。提议的公式还考虑了拉压压缩不对称,加工各向异性以及应力引起的转变和温度引起的转变之间的区别。因此,该模型描述了形状记忆合金在复杂多轴热机械载荷作用下的热弹性响应。通过将模拟与实验进行详细比较,证明了这些能力。

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