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Fatigue resistance of branching phase-transformation fronts in pseudoelastic NiTi polycrystalline strips

机译:伪弹性NITI多晶条中分支相变前面的疲劳抗性

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Inhomogeneous martensitic phase transformation induced by tensile stress can trigger Luders-like band formation in pseudoelastic NiTi polycrystalline which has influence on its fatigue behaviors. It is often intuitively conjectured that the phase-transformation front (band front) has lower fatigue resistance than the regions inside or outside the band (i.e., the Martensite or Austenite domains), but no experiment in literature can confirm or disprove this conjecture. In this paper, a systematic fatigue study is performed on NiTi strips with nucleated bands under cyclic "elastic" loading, where the nominal strain amplitude is set as a small value (0.25%) to keep the band front immobile. Meanwhile, a close relation between the front morphology and the strip's fatigue failure is revealed with the help of a "global camera" to achieve the full-field strain distribution (by Digital Image Correlation) and a "local camera" to observe the local front morphology. It is found that the band front branches into many small-scale narrow bands in thin strips while the front has no branching and just becomes diffusive in thick strips, and the fatigue life of the thin strip is shorter than the thick strip. Moreover, for the strips cut along the rolling direction, the fatigue failures of the strips with different thicknesses always occur at the phase-transformation front. The reason is attributed to the stress concentration in the front due to the branching front morphology and geometry necking, which depend on the structure geometry (strip thickness here), and the dissipative microscopic interface motion of Austenite-Martensite phase mixtures. (C) 2017 Elsevier Ltd. All rights reserved.
机译:拉伸应力诱导的不均匀的马氏体相变化可以引发伪心的NITI多晶中的偏离状带状,这对其疲劳行为影响。通常是直观地猜测相变前部(带前沿)比带内部或带内部的区域(即马氏体或奥氏体域)的区域具有较低的疲劳性,但在文献中没有实验可以确认或反驳这种猜想。在本文中,对循环“弹性”负载下的核心条带进行了系统疲劳研究,其中标称应变幅度设定为小值(0.25%),以保持带前端的不动。同时,借助于“全局摄像机”来揭示前面形态与条带的疲劳失败之间的密切关系,以实现全场应变分布(通过数字图像相关)和“本地摄像机”来观察本地前部形态学。发现频带前部分支成薄条的许多小窄带,而前部没有分支,并且在厚条上变得扩散,并且薄带的疲劳寿命短于厚条。此外,对于沿轧制方向切割的条带,具有不同厚度的条带的疲劳失效总是在相变前面发生。由于分支前形态和几何缩颈,原因归因于前方的应力浓度,这取决于结构几何形状(这里的条带厚度),以及奥氏体 - 马氏体相混合的耗散显微界面运动。 (c)2017 Elsevier Ltd.保留所有权利。

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