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Surface form memory in NiTi shape memory alloys by laser shock indentation

机译:NiTi形状记忆合金中激光冲击压痕的表面形状记忆

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摘要

An indentation-planarization method for NiTi shape memory alloys has been developed that produces a robust surface topographical memory effect that we call "surface form memory", or SFM. Surface form memory entails reversible transitions between one surface form (flat) and another (say, wavy) that occur on changing temperature. These transitions are cyclically stable and exhibit very high mechanical energy density. Our previous study has demonstrated SFM transitions in NiTi alloys derived from quasistatic (i.e., low strain rate) spherical indents, as well as other geometries. Here, we report on experiments using confined laser ablation to indent a similar martensitic NiTi substrate, but in the dynamical regime (very high strain rate). As in the quasistatic case, subsurface plastic strain gradients are created via martensite twinning reactions, and later by dislocation-mediated slip. The resulting defects and stress fields support the two-way shape memory effect underlying SFM. In the dynamical case however, relative cyclic two-way displacements are found to be significantly larger, when normalized to the initial indent depth, than is the case with quasistatic indentation. This confers certain processing and boundary condition advantages. Analysis of the shock dynamics is found to be consistent with the observed surface displacements.
机译:已开发出一种用于NiTi形状记忆合金的压痕平面化方法,该方法可产生坚固的表面形貌记忆效应,我们称其为“表面形状记忆”或SFM。表面形式记忆需要在温度变化时发生在一种表面形式(平坦)和另一种表面形式(例如波浪形)之间的可逆转变。这些跃迁是周期性稳定的,并具有很高的机械能密度。我们之前的研究表明,NiTi合金中的SFM过渡源自准静态(即低应变率)球形凹痕以及其他几何形状。在这里,我们报道了使用受限激光烧蚀使相似的马氏体NiTi基板压痕的实验,但是在动态范围内(非常高的应变率)。与准静态情况一样,地下塑性应变梯度是通过马氏体孪晶反应产生的,随后是由位错介导的滑移产生的。由此产生的缺陷和应力场支持了SFM的双向形状记忆效应。但是,在动态情况下,当归一化为初始压痕深度时,相对准双向压痕的相对循环双向位移明显更大。这赋予了某些处理和边界条件的优势。发现对冲击动力学的分析与观察到的表面位移一致。

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  • 来源
    《Journal of Materials Science》 |2012年第5期|p.2088-2094|共7页
  • 作者单位

    Department of Chemical Engineering and Materials Science, Michigan State University, East Lansing, MI, 48824, USA;

    Department of Chemical Engineering and Materials Science, Michigan State University, East Lansing, MI, 48824, USA;

    School of Industrial Engineering, Purdue University, West Lafayette, IN, 47906, USA;

    School of Industrial Engineering, Purdue University, West Lafayette, IN, 47906, USA;

    Department of Chemical and Materials Engineering, University of Kentucky, Lexington, KY, 40506, USA;

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