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The Analysis of Superelasticity and Microstructural Evolution in NiTi Single Crystals by Molecular Dynamics

机译:NiTi单晶的超弹性和微观结构演化的分子动力学分析

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摘要

Superelasticity in shape memory alloys is an important feature for actuators and medical devices. However, the function of the devices is typically limited by mechanical bandwidth and fatigue, which are dominated by the microstructures. Thus, in order to correlate the mechanical response and the microstructures, the microstructural evolution in NiTi single crystals under the compression, tensile, and shearing tests is simulated by molecular dynamics (MD) in the current study. Then, the martensite variant identification method, which identifies the crystal variants/phases of each lattice based on the transformation matrix, is used to post-process the MD results. The results with the detailed information of variants and phases reveal many features that have good agreement with those reported in the literature, such as X-interfaces and the transitional orthorhombic phase between the austenite and monoclinic phases. A new twin structure consisting of diamond and wedge-shaped patterns is also discovered. The macroscopic behavior, such as stress-strain curves and the total energy profile, is linked with the distribution of dislocation and twin patterns. The results suggest that the loading cases of shear and compression allow a low critical strain for the onset of martensitic transformation and a better superelasticity behavior. Therefore, the two loading cases are suitable to apply to the NiTi actuators. The current work is expected to provide insight into the mechanical responses and design guideline for NiTi shape memory alloy actuators.
机译:形状记忆合金中的超弹性是执行器和医疗设备的重要特征。然而,设备的功能通常受到机械带宽和疲劳的限制,而机械带宽和疲劳主要由微观结构决定。因此,为了使机械响应与微观结构相关联,在当前研究中,通过分子动力学(MD)模拟了NiTi单晶在压缩,拉伸和剪切试验下的微观结构演变。然后,使用马氏体变种识别方法(基于变换矩阵识别每个晶格的晶体变体/相)对MD结果进行后处理。具有变体和相的详细信息的结果表明,许多特征与文献报道的特征具有很好的一致性,例如X界面以及奥氏体和单斜晶相之间的过渡斜方晶相。还发现了一种由菱形和楔形图案组成的新型孪生结构。宏观行为,例如应力-应变曲线和总能量分布,与位错和孪晶的分布有关。结果表明,剪切和压缩的加载情况允许较低的临界应变使马氏体转变开始,并具有更好的超弹性行为。因此,这两种负载情况都适用于NiTi执行器。预期当前的工作将提供有关NiTi形状记忆合金致动器的机械响应和设计指南的见识。

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