单向复合材料非线性响应的微观力学分析:一种基本方法

V. Jadhav, S. Sridharan
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引用次数: 0

摘要

建立了具有不同代表性体积元的微力学模型,研究了其预测单向复合材料非线性响应的能力。将其他研究人员广泛使用的简单的方形单元微力学模型与更先进的基于三相有限元的微力学模型进行了比较。该模型利用了基体的“体积”特性,而没有试图“调整”模型以适应层状材料的实验响应。这是一种更基本的办法,背离了目前的做法。这些模型考虑了剪切软化、基体开裂和残余应力的存在。采用涂抹裂纹法对基体微裂纹进行表征。对碳-环氧复合材料的层板、层压板和圆柱体进行了实验研究。实验结果表明,在适当的局部开裂选项下,更精确的微力学模型提供了良好的实验响应边界,且精度一致。然而,方形单元格类型模型在其预测中并不一致,因此提出了关于其在任何一般微观力学分析中的适用性的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Micromechanical Analysis of Nonlinear Response of Unidirectional Composites: A Fundamental Approach
Micromechanical models with different representative volume elements have been developed to study their ability to predict nonlinear response of unidirectional composites. A simple, square cells type micro-mechanical model similar to those widely used by other researchers is compared with a more advanced 3-phase finite element based micro-mechanical model. The models utilize the “bulk” properties of the matrix without attempting to “tune” the model to fit with experimental response of laminae. This is a more fundamental approach and constitutes a departure from current practice. The models account for shear softening, matrix cracking and the presence of residual stresses. A smeared cracking approach was used to characterize the micro-cracking in matrix. Experimental studies were performed on laminae, laminates and cylinders made from carbon epoxy composites. Experimental comparisons show that the more accurate micro-mechanical model with proper partial cracking options provides good bounds on experimental response with consistent accuracy. A square cells type model however is not consistent in its predictions, thus raising questions about its applicability in any general micro-mechanics based analysis.
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