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首页> 外文期刊>International Journal of Plasticity >Parametrically homogenized constitutive models (PHCMs) from micromechanical crystal plasticity FE simulations, part I: Sensitivity analysis and parameter identification for Titanium alloys
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Parametrically homogenized constitutive models (PHCMs) from micromechanical crystal plasticity FE simulations, part I: Sensitivity analysis and parameter identification for Titanium alloys

机译:来自微机械晶体塑性Fe模拟的参数均质构成型模型(PHCMS),I部分:钛合金的敏感性分析和参数鉴定

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摘要

This is the first of a two part paper that systematically develops a finite deformation elastoplastic, parametrically homogenized constitutive model (PHCM) for structural-scale macroscopic simulations of Titanium alloy Ti6242S. The PHCMs are thermodynamically consistent, reduced order continuum models that incorporate functional forms of representative aggregated micro structural parameters (RAMPs) in their constitutive coefficients. These models are designed to represent all characteristics of macroscopic response such as anisotropy, tension-compression asymmetry, strain-rate and temperature dependence, and are consistent with microscopic crystal plasticity relations. An image-based size and rate-dependent crystal plasticity FE (CPFE) model is developed for creating a data-base needed for deriving functional forms of PHCM coefficients using machine learning methods. The first part of this sequence summarizes the generation of microstructure-based statistically equivalent representative volume elements (M-SERVES) and the image-based CPFE model. Extensive sensitivity analysis is conducted to unravel the effect of specific RAMPs on the overall material response, and hence the PHCM constitutive coefficients. Sobol sensitivity analysis is performed to evaluate the sensitivities of constitutive coefficients in PHCM with respect to RAMPs to examine their suitability for representation. In the second part (Kotha et al., 2019), machine learning will be used with the database to create functional forms of the constitutive coefficients in the PHCMs.
机译:这是两个部分纸中的第一部分,系统地发展有限变形弹性塑动性,参数均质型本构模型(PHCM),用于钛合金Ti6242s的结构级宏观模拟。 PHCMS是热力学一致的,减少的连续阶数模型,其在其本构系数中掺入了代表性聚集的微结构参数(斜坡)的功能形式。这些模型设计用于代表宏观反应的所有特征,例如各向异性,张力 - 压缩不对称性,应变率和温度依赖性,并且与微观晶体塑性关系一致。开发了一种基于图像的大小和速率相关的晶体塑性Fe(CPFE)模型,用于使用机器学习方法创建用于导出功能形式的PHCM系数功能形式所需的数据库。该序列的第一部分总结了基于微结构的统计上等效代表体积元素(M-SERVES)和基于图像的CPFE模型的产生。进行广泛的敏感性分析以解开特定斜坡对整体材料响应的影响,因此PHCM本构型系数。进行软骨敏感性分析以评估PHCM中的组成型系数的敏感性,相对于坡道来检查它们的表示适用性。在第二部分(Kotha等,2019年),机器学习将与数据库一起使用,以在PHCMS中创建功能形式的本组成系数。

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