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Micromechanical Approach of Stress-Induced Phase Transformation

机译:应力诱导相变的微机械方法

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摘要

Stress-induced martensitic phase transformation is responsible of very important phenomena like superelasticity or two-way shape memory in shape memory alloys. These phenomena are at the origin of many innovative products in industrial fields like aerospace or biomedical applications. To reach the best design is a very difficult task for applications using shape memory alloys: due to the existence of a phase transformation, these materials can no longer be considered as homogeneous and macroscopic approaches failed to give an accurate description of their behavior. The recent trend using SMA thin film as microactuator in microdevice increase the need of reliable design tools. Moderns concepts developed in micromechanics and finite element analysis are well adapted to deal with these problems, Intra and intergranular stresses building from transformation strain incompatibilities in bulk materials or thin films are well accounted using these tools, even when complex loading conditions or different initial crystallographic texture are considered.
机译:应力引起的马氏体相变是非常重要的现象的原因,例如形状记忆合金中的超弹性或双向形状记忆。这些现象是航空航天或生物医学应用等工业领域中许多创新产品的起源。要获得最佳设计,这对于使用形状记忆合金的应用来说是一项艰巨的任务:由于存在相变,因此这些材料不再被视为均质的,而且宏观方法无法准确描述其行为。在微器件中使用SMA薄膜作为微致动器的最新趋势增加了对可靠设计工具的需求。在微力学和有限元分析中发展起来的现代概念非常适合于解决这些问题,即使使用复杂的载荷条件或不同的初始晶体学纹理,使用这些工具也可以很好地解决由于块状材料或薄膜中的变形应变不兼容而产生的晶内和晶间应力。被考虑。

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