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Size effects in ferromagnetic shape memory alloys.

机译:铁磁形状记忆合金的尺寸效应。

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摘要

The utilization of ferromagnetic shape memory alloys (FSMAs) in small scale devices has attracted considerable attention within the last decade. However, the lack of sufficient studies on their reversible shape change mechanisms, i.e, superelasticity, magnetic field-induced martensite variant reorientation and martensitic phase transformation, at the micron and submicron length scales has prevented the further development and the use of FSMAs in small scale devices. Therefore, investigating the size effects in these mechanisms has both scientific and technological relevance.;Superelastic behavior of Ni54Fe19Ga27 shape memory alloy single crystalline pillars was studied under compression as a function of pillar diameter. Multiple pillars with diameters ranging between 200 nm and 10 mum were cut on a single crystalline bulk sample oriented along the [110] direction in the compression axis and with fully reversible two-stage martensitic transformation. The results revealed size dependent two-stage martensitic transformation which was suppressed for pillar sizes of 1 mum and below. We also demonstrated that the reduction in pillar diameter decreases the transformation temperature due to the difficulty of martensite nucleation in small scales.;Size effects in the magnetic field-induced martensite variant reorientation were investigated in the Ni50Mn28.3Ga21.7 single crystals oriented along the [100] direction of the austenite phase. Single crystalline compression pillars were fabricated on the martensite twins between the sizes of 630 nm and 20 mum. It was found that the stress-induced and magnetic field-induced martensite variant reorientation are size dependent and became more difficult with the reduction in sample size. Surprisingly, it was still possible to magnetically activate the shape change in the micropillars which indicates the fact that magnetocrystalline anisotropy energy increases with the reduction in sample dimensions.;Ni45Mn36.6Co5In13.4 pillars between the 600 nm and 10 mum diameters were investigated along the [100] direction of the austenite to study the size effects in the magnetic field-induced phase transformation (MFIPT). MFIPT was obtained down to 5 mum size in these pillars with reasonable magnetic field levels similar to their bulk counterparts.
机译:在过去的十年中,铁磁形状记忆合金(FSMA)在小型设备中的应用引起了相当大的关注。但是,对于微米和亚微米长度尺度的可逆形状变化机制(即超弹性,磁场引起的马氏体变体重新定向和马氏体相变)缺乏足够的研究,这阻止了FSMA的进一步发展和小规模使用设备。因此,研究这些机制中的尺寸效应具有科学和技术意义。;研究了Ni54Fe19Ga27形状记忆合金单晶立柱在压缩状态下随立柱直径的变化的超弹性行为。在沿压缩轴[110]方向定向并具有完全可逆的两阶段马氏体转变的单晶大块样品上,切出了直径在200 nm至10μm之间的多个支柱。结果表明,尺寸依赖性的两阶段马氏体相变在1mm及以下的立柱尺寸中受到抑制。我们还证明了由于小规模的马氏体成核的困难,立柱直径的减小降低了相变温度。;在沿磁场取向的Ni50Mn28.3Ga21.7单晶中研究了磁场诱导的马氏体变取向的尺寸效应。 [100]奥氏体相的方向。在马氏体孪晶上在630 nm和20 mm的尺寸之间制造了单晶压缩柱。发现应力诱导和磁场诱导的马氏体变体重新定向与尺寸有关,并且随着样品尺寸的减小而变得更加困难。出人意料的是,仍然可以磁激活微柱的形状变化,这表明以下事实:随着样品尺寸的减小,磁晶各向异性能增加。;沿600nm和10mm直径的Ni45Mn36.6Co5In13.4柱进行了研究。 [100]奥氏体方向研究尺寸效应在磁场中引起的相变(MFIPT)。在这些柱子中获得的MFIPT小至5微米大小,并且具有与大块同类物相似的合理磁场强度。

著录项

  • 作者

    Ozdemir, Nevin.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Materials science.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 196 p.
  • 总页数 196
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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