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The physical and mechanical metallurgy of advanced O+BCC titanium alloys.

机译:先进的O + BCC钛合金的物理和机械冶金。

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摘要

This thesis comprises a systematic study of the microstructural evolution, phase transformation behavior, elevated-temperature creep behavior, room-temperature and elevated-temperature tensile behavior, and room-temperature fatigue behavior of advanced titanium-aluminum-niobium (Ti-Al-Nb) alloys with and without boron additions. The specific alloys studied were: Ti-5A1-45Nb (at%), Ti-15Al-33Nb (at%), Ti-15Al-33Nb-0.5B (at%), Ti-15Al-33Nb-5B (at%), Ti-21Al-29Nb (at%), Ti-22Al-26Nb (at%), and Ti-22Al-26Nb-5B (at%). The only alloy composition that had been previously studied before this thesis work began was Ti-22Al-26Nb (at%). Publication in peer-reviewed material science journals of the work performed in this thesis has made data available in the scientific literature that was previously non-existent. The knowledge gap for Ti-Al-Nb phase equilibria over the compositional range of Ti-23Al-27Nb (at%) to Ti-12Al-38Nb (at%) that existed before this work began was successfully filled. The addition of 5 at% boron to the Ti-15Al-33Nb alloy produced 5-9 volume percent boride phase needles within the microstructure. The chemical composition of the boride phase measured by electron microprobe was determined to be approximately B 2TiNb. The lattice parameters of the boride phase were simulated through density functional theory calculations by collaborators at the Air Force Research Laboratory based on the measured composition. Using the simulated lattice parameters, electron backscatter diffraction kikuchi patterns and selected area electron diffraction patterns obtained from the boride phase were successfully indexed according to the space group and site occupancies of the B27 orthorhombic crystal structure. This suggests that half the Ti (c) Wyckoff positions are occupied by Ti atoms and the other half are occupied by Nb atoms in the boride phase lattice. Creep deformation behavior is the main focus of this thesis and in particular understanding the dominant creep deformation mechanisms as a function of stress, temperature, and strain rate. Microstructure-creep relationships for Ti-Al-Nb-xB alloys were developed with the understanding gained. A rule-of-mixtures empirical model based on constituent phase volume fractions and strain rates was developed to predict the minimum creep rates of two-phase O+BCC microstructures. The most innovative results of this thesis were produced through the development of an in-situ creep testing methodology. The creep deformation evolution was chronicled in-situ during high temperature creep experiments, while creep displacement versus time data was simultaneously obtained. The in-situ experiments revealed that prior-BCC grain boundaries were the locus of damage accumulation during creep deformation. A methodology that allows in-situ observation of surface creep deformation as a function of creep displacement has yet to be presented in the literature.
机译:本论文系统研究了高级钛铝铌(Ti-Al-Nb)的组织演变,相变行为,高温蠕变行为,室温和高温拉伸行为以及室温疲劳行为。 )添加和不添加硼的合金。研究的特定合金为:Ti-5A1-45Nb(at%),Ti-15Al-33Nb(at%),Ti-15Al-33Nb-0.5B(at%),Ti-15Al-33Nb-5B(at%) ,Ti-21Al-29Nb(at%),Ti-22Al-26Nb(at%)和Ti-22Al-26Nb-5B(at%)。在本论文工作开始之前,先前已研究过的唯一合金成分是Ti-22Al-26Nb(at%)。在同行评审的材料科学期刊上发表的这篇论文所进行的研究,已经使以前不存在的科学文献中的数据变得可用。成功地填补了这项工作开始之前存在的Ti-23Al-27Nb(at%)到Ti-12Al-38Nb(at%)组成范围内的Ti-Al-Nb相平衡的知识空白。向Ti-15Al-33Nb合金中添加5at%的硼会在微观结构内产生5-9%(体积)的硼化物相针。通过电子探针测量的硼化物相的化学组成被确定为大约B 2TiNb。空军研究实验室的合作者根据测得的成分,通过密度泛函理论计算来模拟硼化物相的晶格参数。使用模拟的晶格参数,根据B27正交晶体结构的空间群和位点占有率,成功地索引了从硼化物相获得的电子背散射衍射菊池图和选定区域电子衍射图。这表明在硼化物相晶格中,Ti(c)Wyckoff位置的一半被Ti原子占据,另一半被Nb原子占据。蠕变变形行为是本文的主要研究重点,尤其是要了解应力,温度和应变速率与蠕变变形机理的关系。在获得了解的基础上,开发了Ti-Al-Nb-xB合金的微观蠕变关系。建立了基于组成相体积分数和应变率的混合规则经验模型,以预测两相O + BCC微结构的最小蠕变率。本论文最具创新性的结果是通过开发原位蠕变测试方法得出的。在高温蠕变实验中,蠕变变形演化在原位进行了编年史,同时获得了蠕变位移随时间变化的数据。原位实验表明,先前的BCC晶界是蠕变变形过程中损伤积累的场所。允许就地观察表面蠕变变形作为蠕变位移的函数的方法尚未在文献中提出。

著录项

  • 作者

    Cowen, Christopher John.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 344 p.
  • 总页数 344
  • 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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