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Effects of superelasticity and plasticity on the spherical indentation response of shape memory alloys: a finite element analysis

机译:超弹性和可塑性对形状记忆合金球形压痕响应的影响:有限元分析

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Instrumented indentation is particularly useful for characterizing the mechanical behavior of shape memory alloys (SMAs), which are often used as 'small volume' elements such as thin films or wires. Deciphering the measured indentation response, which is as such difficult for elastic-plastic materials due to the inhomogeneous state of stress underneath the indenter, becomes more complex for SMAs owing to the simultaneous occurrence of stress induced martensite transformation (SIMT) in conjunction with plastic deformation. In this work, a constitutive model that is able to capture the coupled nature of phase transformation and plastic deformation is employed to study, through finite element analyses, the spherical indentation behavior of SMAs at a temperature above the austenite finish temperature, A(f). It is found that the concurrent development of plastic yielding and SIMT leads to slower evolution of martensite volume and a smaller transformed zone size. Also, in the absence of plastic yielding, the proportion of depth recovered by superelasticity is fairly constant. It is also observed, from a systematic comparison with a conventional elastic-plastic material, that the presence of the transformed zone significantly alters the stress distribution beneath the indenter.
机译:仪表压痕特别适用于表征形状记忆合金(SMA)的力学行为,其通常用作“诸如薄膜或线的”小体积“元件。由于在压头下方的不均匀应力状态而导致弹性塑料材料的难以引起的测量压痕响应,由于结合塑性变形而同时出现应力诱导的马氏体转换(SIMT),对SMA变得更加复杂。在这项工作中,采用能够捕获相变和塑性变形的耦合性质的本构模型来研究,通过有限元分析,在奥氏体终止温度高于奥氏体的温度下SMA的球形压痕行为,a(f) 。结果发现,塑料屈服和模拟的并行发展导致马氏体体积较慢,变化的区域尺寸较小。而且,在没有塑料屈服的情况下,通过超弹性回收的深度比例相当恒定。还观察到,从与常规弹性塑料材料进行系统比较,转化区域的存在显着改变压痕下方的应力分布。

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