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首页> 外文期刊>International Journal of Solids and Structures >A multiscale two-way thermomechanically coupled micromechanics analysis of the impact response of thermo-elastic-viscoplastic composites
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A multiscale two-way thermomechanically coupled micromechanics analysis of the impact response of thermo-elastic-viscoplastic composites

机译:多尺度双向热机械耦合微机械分析热弹性粘塑复合材料的冲击响应

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摘要

A dynamic multiscale micromechanics model that accounts for two-way thermomechanical coupling in composites is presented. It predicts not only the standard deformation that results from a temperature change, but also the temperature change that results from mechanical deformation. In addition, viscoplastic material behavior is included at the scale of the fiber/matrix constituents in a local High-Fidelity Generalized Method of Cells analysis, which is conducted at each material point of a global analysis on a composite specimen. The global analysis of the composite considers time-dependent thermomechanical boundary conditions capable of simulating impact loading while solving the coupled transient thermal problem and the dynamic mechanical problem. Effective thermoelastic and physical properties, as well as homogenized inelastic strains are provided to the global model from the local scale. The multiscale model was employed to examine the impact response of carbon/epoxy and SiC/Ti composites with emphasis on the temperature changes and inelastic strains induced by the impact loading. It was found that the behavior of the two types of composites was quite different, with the differences traceable to the effect of the matrix material properties on the terms within the energy equation, which governs the heat generation. (C) 2018 Elsevier Ltd. All rights reserved.
机译:提出了一种动态的多尺度微机械模型,其占复合材料中双向热机械耦合的微观机械模型。它不仅预测了由温度变化产生的标准变形,而且预测由机械变形导致的温度变化。此外,粘液材料行为包括在局部高保真的通用方法的纤维/基质成分的规模中,在全局分析的全局分析的每个材料点进行,该纤维/基质成分在局部高保真的通用方法中。复合材料的全局分析考虑了能够模拟冲击载荷的时间依赖的热机械边界条件,同时解决耦合的瞬态热问题和动态机械问题。从本地规模提供有效的热弹性和物理性质以及均匀化的非弹性菌株。使用多尺度模型来检查碳/环氧树脂和SiC / Ti复合材料的影响响应,重点是受冲击载荷诱导的温度变化和无弹性菌株。结果发现,两种类型的复合材料的行为非常不同,差异可追溯到基质材料特性对能量方程内的术语的影响,该能量方程管辖地控制发热。 (c)2018年elestvier有限公司保留所有权利。

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