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首页> 外文期刊>International Journal of Solids and Structures >Modeling the anisotropic elastocaloric effect of textured NiMnGa ferromagnetic shape memory alloys
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Modeling the anisotropic elastocaloric effect of textured NiMnGa ferromagnetic shape memory alloys

机译:建模纹理Nimnga铁磁形状记忆合金的各向异性弹性效应

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摘要

Directionally solidified NiMnGa ferromagnetic shape memory alloys (FSMAs) can exhibit anisotropic elastocaloric effect due to large transformation latent heat release/absorption and strong initial texture. Nowadays, these alloys are promising candidates for the core components of solid-state refrigeration devices. In this work, based on crystal plasticity theory, a constitutive model is constructed to predict such anisotropic elastocaloric effect. Firstly, a thermo-mechanically coupled constitutive model is constructed at single crystal scale to describe the non-isothermal stress-induced transformation between austenite phase and modulated martensite one with a periodicity of 5 lattice cells (5M). Internal heat generation originating from transformation latent heat and irreversible mechanical dissipation is considered. A thermo-mechanically coupled self-consistent homogenization scheme is developed to estimate the interaction among grains and the heat exchange with environment, and calculate the overall deformation and temperature variation of the polycrystalline aggregates. By introducing a strong {100}(A) initial texture, the established model is applied to analyze the anisotropic elastocaloric effect of textured polycrystalline NiMnGa FSMA. It is found that the quantitative results obtained in experiments such as stress-strain response and adiabatic temperature change can be reasonably captured by the proposed model. Furthermore, the isotropic elastocaloric effect in the un-textured NiMnGa FSMAs is predicted. It is shown that the initial texture plays an important role on the elastocaloric effect, and the textured NiMnGa FSMAs have obvious advantages over the untextured ones. The proposed model provides a theoretical guidance for the design of solid-state refrigeration devices at the micro- and macro-scales. (C) 2019 Elsevier Ltd. All rights reserved.
机译:定向凝固的NIMNGA铁磁性形状记忆合金(FSMAS)由于大型转化潜热释放/吸收和强初始纹理,可以表现出各向异性弹性效果。如今,这些合金是用于固态制冷装置的芯部件的承诺候选者。在这项工作中,基于晶体塑性理论,构建了构成模型以预测这种各向异性弹性效应。首先,在单晶尺中构建热机械耦合的本构模型,以描述奥氏体相和调节马氏体之间的非等温应激诱导的转化,其周期性为5个晶格细胞(5m)。考虑了源自转化潜热和不可逆机械耗散的内部发热。开发了热机械耦合的自一致均质化方案以估计谷物和与环境的热交换之间的相互作用,并计算多晶聚集体的整体变形和温度变形。通过引入强大的{100}(a)初始纹理,应用了建立的模型来分析纹理多晶Nimnga Fsma的各向异性弹性效应。发现可以通过所提出的模型合理地捕获在诸如应力 - 应变响应和绝热温度变化的实验中获得的定量结果。此外,预测了未纹理的NIMNGA FSMA中的各向同性弹性效应。结果表明,初始纹理在弹性效应上起重要作用,纹理的NIMNGA FSMAS优于未经构成的NIMNGA FSMAS。该拟议的模型提供了在微观和宏观尺度上设计固态制冷装置的理论指导。 (c)2019年elestvier有限公司保留所有权利。

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