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Origin of high strength low modulus superelasticity in nanowire-shape memory alloy composites

机译:纳米线形记忆合金复合材料高强度低模量超弹性的起源

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摘要

An open question is the underlying mechanisms for a recent discovered nanocomposite, which composed of shape memory alloy (SMA) matrix with embedded metallic nanowires (NWs), demonstrating novel mechanical properties, such as large quasi-linear elastic strain, low Young’s modulus and high yield strength. We use finite element simulations to investigate the interplay between the superelasticity of SMA matrix and the elastic-plastic deformation of embedded NWs. Our results show that stress transfer plays a dominated role in determining the quasi-linear behavior of the nanocomposite. The corresponding microstructure evolution indicate that the transfer is due to the coupling between plastic deformation within the NWs and martensitic transformation in the matrix, i.e., the martensitic transformation of the SMA matrix promotes local plastic deformation nearby, and the high plastic strain region of NWs retains considerable martensite in the surrounding SMA matrix, thus facilitating continues martensitic transformation in subsequent loading. Based on these findings, we propose a general criterion for achieving quasi-linear elasticity.
机译:一个悬而未决的问题是最近发现的纳米复合材料的潜在机理,该复合材料由形状记忆合金(SMA)基体和嵌入的金属纳米线(NWs)组成,展现出新颖的机械性能,例如大的准线性弹性应变,低的杨氏模量和较高的屈服强度。我们使用有限元模拟来研究SMA矩阵的超弹性与埋入式NW的弹塑性变形之间的相互作用。我们的结果表明,应力传递在确定纳米复合材料的准线性行为中起着主导作用。相应的微观结构演变表明,这种转移是由于NW内塑性变形与基体中的马氏体相变之间的耦合所致,即SMA基体的马氏体相变促进了附近的局部塑性变形,而NWs的高塑性应变区得以保留。周围的SMA基体中有大量的马氏体,因此有利于在随后的加载中继续进行马氏体相变。基于这些发现,我们提出了实现准线性弹性的一般准则。

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