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Microstructure optimization with constrained design objectives using machine learning-based feedback-aware data-generation

机译:基于机器学习的反馈感知数据生成的微观结构优化具有约束设计目标

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摘要

Microstructure sensitive design has a critical impact on the performance of engineering materials. The safety and performance requirements of critical components, as well as the cost of material and machining of Titanium components, make dovetailing of the microstructure imperative. This paper addresses the optimization of several microstructure design problems for Titanium components under specific design constraints using a feedback-aware data-driven solution methodology. In this study, the microstructure is modeled with an orientation distribution function (ODF) that measures the volumes of different crystallographic orientations. Two algorithms are used to sample the entire microstructure space followed by machine learning-aided identification of a minimal subset of ODF dimensions which is subsequently explored by targeted sampling.
机译:微观结构敏感设计对工程材料性能产生了关键影响。 关键部件的安全性和性能要求,以及钛成分的材料和加工成本,使微观结构令人垂涎。 本文使用反馈意识数据驱动的解决方案方法,解决了在特定设计约束下钛成分的多种微观结构设计问题的优化。 在该研究中,微结构用定向分布函数(ODF)建模,其测量不同的晶体取向的体积。 两种算法用于对整个微结构空间进行采样,然后通过针对目标采样探索的ODF尺寸的最小尺寸的机器学习识别。

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  • 来源
    《Computational Materials Science》 |2019年第2019期|共18页
  • 作者单位

    Northwestern Univ Dept Elect Engn &

    Comp Sci LG65 2145 Sheridan Rd Evanston IL 60208 USA;

    Virginia Tech Dept Mech Engn Blacksburg VA USA;

    Northwestern Univ Dept Elect Engn &

    Comp Sci LG65 2145 Sheridan Rd Evanston IL 60208 USA;

    Northwestern Univ Dept Elect Engn &

    Comp Sci LG65 2145 Sheridan Rd Evanston IL 60208 USA;

    Univ Michigan Dept Aerosp Engn Ann Arbor MI 48109 USA;

    Northwestern Univ Dept Elect Engn &

    Comp Sci LG65 2145 Sheridan Rd Evanston IL 60208 USA;

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  • 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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