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A Micromechanics-Based Processing Model for Predicting Residual Stress in Fiber-Reinforced Composites

机译:基于微力学的纤维增强复合材料残余应力预测处理模型

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The focus of this paper is to develop a micromechanics-based processing model that predicts the residual stress development in a fiber-reinforced composite during the curing process. The effective thermal and mechanical properties of the composite were computed in closed form using the concentric cylinder assemblage (CCA) micromechanics model. The effective composite thermal properties were used to solve the distributions of temperature and degree of cure (DOC) in the composite during the curing process through heat transfer analysis, where the cure kinetics was incorporated as an internal heat generation term. The solved temperature and DOC distributions were implement as pre-defined fields in the subsequent stress analysis of the curing process. The residual stress accumulation during the curing process was computed through the cure constitutive model that encompasses cure-dependent mechanical properties, thermal strains, and cure shrinkage. The proposed composite processing model was applied to predict the deformed shape of a nonsymmetrical laminate after the curing process. The composite was fabricated using the Vacuum Assisted Resin Transfer Molding (VARTsM) technique. The predictive capability of the proposed model is evaluated by comparing the computed curvatures of the panel with the experimental results.
机译:本文的重点是开发一种基于微力学的加工模型,该模型可以预测固化过程中纤维增强复合材料中的残余应力。使用同心圆柱体装配(CCA)微力学模型以闭合形式计算复合材料的有效热和机械性能。有效的复合材料热性能用于通过热传递分析来解决固化过程中复合材料中温度和固化度(DOC)的分布,其中将固化动力学作为内部生热术语纳入其中。解决的温度和DOC分布在固化过程的后续应力分析中作为预定义的字段实现。通过固化本构模型计算固化过程中的残余应力累积,该模型包含与固化有关的机械性能,热应变和固化收缩率。提出的复合材料加工模型被用于预测固化过程后非对称层压板的变形形状。使用真空辅助树脂传递模塑(VARTsM)技术制造复合材料。通过将面板的计算曲率与实验结果进行比较,可以评估所提出模型的预测能力。

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