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Local strain development in high temperature ruthenium aluminide intermetallic alloys.

机译:高温钌铝化物金属间合金的局部应变发展。

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摘要

The limited ductility in many high temperature B2 aluminides has significantly hindered their integration into structural components in bulk form in areas such as aircraft engines and commercial power generators. Compared to other high temperature B2 aluminides, RuAl displays a very high melting temperature (Tm ∼2068°C) and unusually high compression ductility, which is thought to arise from its diverse slip behavior and the two phase microstructure. The objective of this study is to examine the plastic behavior of this compound in greater detail, with emphasis on developing a quantitative understanding of the straining processes at the scale of the microstructure. Several advanced experimental techniques, including a newly developed surface displacement mapping technique, orientation imaging microscopy, nanoindentation, focused ion beam and transmission electron microscopy are utilized to investigate the strain development behavior at the local microstructural scale of three different RuAl alloys, each with varying volume fraction of a secondary delta-Ru phase. This research is unique in that it directly connects the local straining behavior to the microstructure as well as to the underlying dislocation activity. It is found that a significant degree of strain heterogeneity developed in RuAl alloys after a few percent nominal deformation, with strains varying by a factor of 10∼300% from the mean imposed strains within the neighborhood of several grains. The characteristics of such heterogeneity vary with the amount of delta-Ru phase present. This delta phase serves as a compliant layer by deforming preferentially during deformation and redistributing strain in the local microstructural areas. In single phase RuAl, the straining of grains is dominated by the 110>{lcub}110{rcub} slip system in comparison to the 100>{lcub}110{rcub} system under the local microstructural conditions studied. By examining the details of strain heterogeneity and local lattice distortion, it is found that large strain gradients in the vicinity of grain boundaries are not associated with variations in the density of geometrically necessary dislocations.
机译:许多高温B2铝化物的延展性有限,严重阻碍了它们以散装形式集成到诸如飞机发动机和商用发电机等领域的结构部件中。与其他高温B2铝化物相比,RuAl具有很高的熔化温度(Tm〜2068°C)和异常高的压缩延展性,这被认为是由于其不同的滑移行为和两相微观结构引起的。这项研究的目的是更详细地检查这种化合物的塑性行为,重点是在微观结构的规模上建立对应变过程的定量理解。利用几种先进的实验技术,包括新开发的表面位移绘图技术,取向成像显微镜,纳米压痕,聚焦离子束和透射电子显微镜,研究了三种不同体积的RuAl合金在局部微观结构尺度上的应变发展行为。次生δ-Ru相的分数。该研究的独特之处在于它直接将局部应变行为与微观结构以及潜在的位错活动联系起来。研究发现,在RuAl合金中,经过几%的名义变形后,应变异质性显着提高,应变与数个晶粒附近平均施加的应变相差10%至300%。这种异质性的特征随存在的δ-Ru相的量而变化。该δ相通过在变形期间优先变形并在局部微结构区域中重新分布应变而充当柔顺层。在单相RuAl中,在研究的局部微观结构条件下,与<100> {lcub} 110 {rcub}系统相比,晶粒的应变主要由<110> {lcub} 110 {rcub}滑移系统控制。通过检查应变异质性和局部晶格畸变的细节,发现在晶界附近的大应变梯度与几何必要位错的密度变化无关。

著录项

  • 作者

    Wu, Aomin.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 113 p.
  • 总页数 113
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学 ;
  • 关键词

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