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Characterization of in situ Deformation Texture in Superelastic Nitinol.

机译:超弹性镍钛诺中原位变形织构的表征。

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摘要

This dissertation is motivated by the increasing usage of Nitinol in biomedical implant devices as well as the disturbing numbers of device failures as reported in the literature. Given the recent awareness of the complex in vivo loading conditions experience by the devices, combined with the lack of commercial finite element analysis program capable of accurate lifetime prediction for such devices, it is imperative to understand the fundamental mechanism of the underlying phase transformation behind the superelastic mechanical properties of Nitinol. Macroscopic multi-mode fatigue is examined through classical continuum mechanics. It is found that normalization of the dissimilar mechanical behaviors of superelastic Nitinol under multi-modes loading is possible through Coffin-Manson approach. The influence of austenitic texture under in situ multi-mode monotonic and fatigue loading is explored with micro-X-ray Diffraction. It appears that the martensitic transformation propagation occurs in competing pathways between the grain boundary and grain with favorable transformation orientations. It is found that initial austenitic textures as well as loading modes favors different propagation paths. The resulting evolution of austenite texture may explain the fatigue degradation of Nitinol. Austenite texture sharpness as well as grain boundary density is found to have negative influence on the fatigue lifetime of Nitinol. The results determined through this research can be used to derive a better constitutive relation as well as methods for better fatigue lifetime prediction.
机译:这篇论文的动机是由于生物医学植入装置中镍钛诺的使用增加以及文献中报道的装置故障数量令人担忧。鉴于最近对设备在体内负载条件的复杂性的认识,再加上缺乏能够对此类设备进行准确寿命预测的商业有限元分析程序,因此有必要了解该设备背后潜在的相变的基本机制。镍钛诺的超弹性力学性能。宏观多模疲劳通过经典的连续力学进行研究。通过Coffin-Manson方法可以发现,在多模态载荷下,超弹性镍钛诺的不同力学行为可以归一化。利用微X射线衍射研究了奥氏体组织在原位多模单调和疲劳载荷下的影响。马氏体相变传播似乎发生在晶界与具有良好相变取向的晶粒之间的竞争路径中。发现初始奥氏体织构以及加载方式有利于不同的传播路径。产生的奥氏体织构可能解释了镍钛诺的疲劳降解。发现奥氏体组织的锋利度以及晶界密度对镍钛诺的疲劳寿命具有负面影响。通过这项研究确定的结果可用于得出更好的本构关系以及更好的疲劳寿命预测方法。

著录项

  • 作者

    Xu, David.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Applied Mechanics.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 102 p.
  • 总页数 102
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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