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Texture and Microstructure in Two-Phase Titanium Alloys

机译:两相钛合金的织构和微观结构

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摘要

This work explores the processing-microstructure-property relationships in two-phase titanium alloys such as Ti-6Al-4V and Ti-5Al-5V-5Mo-3Cr that are used for aerospace applications. For this purpose, an Integrated Computational Materials Engineering approach is used.;Microstructure and texture of titanium alloys are characterized using optical microscopy, electron backscatter diffraction and x-ray diffraction. To model their properties, three-dimensional synthetic digital microstructures are generated based on experimental characterization data. An open source software package, DREAM.3D, is used to create heterogeneous two-phase microstructures that are statistically representative of two-phase titanium alloys.;Both mean-field and full-field crystal plasticity models are used for simulating uniaxial compression at different loading conditions. A viscoplastic self-consistent model is used to match the stress-strain response of the Ti-5553 alloy based on uniaxial compression tests. A physically-based Mechanical Threshold Stress (MTS) model is designed to cover wide ranges of deformation conditions. Uncertainties in the parameters of the MTS model are quantified using canonical correlation analysis, a multivariate global sensitivity analysis technique.;An elastoviscoplastic full-field model based on the fast Fourier transform algorithm was used to used to simulate the deformation response at both microscopic and continuum level. The probability distribution of stresses and strains for both the phases in the two-phase material is examined statistically. The effect of changing HCP phase volume fraction and morphology has been explored with the intent of explaining the flow softening behavior in titanium alloys.
机译:这项工作探索了用于航空航天应用的两相钛合金(例如Ti-6Al-4V和Ti-5Al-5V-5Mo-3Cr)的加工-微观结构-性能关系。为此目的,使用了综合计算材料工程方法。钛合金的显微组织和织构使用光学显微镜,电子反向散射衍射和X射线衍射进行表征。为了对它们的特性建模,基于实验特征数据生成了三维合成数字微结构。使用开源软件包DREAM.3D创建统计上代表两相钛合金的异质两相微结构。均场和全场晶体可塑性模型均用于模拟不同位置的单轴压缩加载条件。基于单轴压缩试验,采用粘塑性自洽模型来匹配Ti-5553合金的应力应变响应。基于物理的机械阈值应力(MTS)模型旨在涵盖广泛的变形条件。使用规范相关分析,多变量全局灵敏度分析技术对MTS模型参数的不确定性进行量化。;基于快速傅里叶变换算法的弹塑性全场模型用于模拟微观和连续区域的变形响应水平。统计地检查两相材料中两相的应力和应变的概率分布。为了解释钛合金中的流动软化行为,已经研究了改变HCP相体积分数和形态的影响。

著录项

  • 作者

    Mandal, Sudipto.;

  • 作者单位

    Carnegie Mellon University.;

  • 授予单位 Carnegie Mellon University.;
  • 学科 Materials science.;Applied physics.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 242 p.
  • 总页数 242
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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