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首页> 外文期刊>International Journal of Solids and Structures >Multi-scale constitutive modeling of Ceramic Matrix Composites by Continuum Damage Mechanics
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Multi-scale constitutive modeling of Ceramic Matrix Composites by Continuum Damage Mechanics

机译:陶瓷基复合材料的连续损伤力学多尺度本构模型

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a b s t r a c t The microscale damage mechanisms in brittle ceramics are investigated in detail and a Continuum Damage Mechanics (CDM) model is developed in this work to study two common failure modes in Ceramic Matrix Composites (CMC), i.e. matrix/interphase fracture and fiber sliding. In order to empower the developed framework for performing crashworthiness studies, the effect of the dynamic energy density content on the microscale fracture modes of CMCs is also considered. The CDM model is developed within a physically consistent framework that includes basic fracture mechanics of CMCs. Also the CDM model is developed in such a way that most of the material parameters are directly obtainable form the experimental data rather than cumbersome and time consuming numerical curve fitting techniques. In order to construct a computationally effective multiscale analysis platform for CMCs, this work aims to provide an asymptotic solution for a microscale representative volume element (RVE) which represents the fiber, interphase and matrix interactions. The developed asymptotic solution can capture the non-linear response of CMCs through CDM model; and it considerably reduces the computational cost of hierarchical multiscale analysis in comparison to the numerical methods, e.g. numerical models that simulate the real microstructure. The CDM model and the RVE asymptotic solution are utilized to study the microscale damage mechanisms in CMC systems. It is shown that the developed scheme performs quite well in capturing available experiments in the literature and provides a comprehensive description of microscale damage mechanisms in CMCs. The developed framework can be utilized in the future developments of the hierarchical multiscale analysis of CMC systems.
机译:详细研究了脆性陶瓷的微观损伤机理,并建立了连续损伤力学(CDM)模型以研究陶瓷基复合材料(CMC)的两种常见失效模式,即基质/相间断裂和纤维滑动。为了使开发的框架能够执行耐撞性研究,还考虑了动态能量密度含量对CMC的微观断裂模式的影响。 CDM模型是在包括CMC的基本断裂力学在内的物理一致框架内开发的。而且,CDM模型的开发方式使得大多数材料参数可直接从实验数据获得,而不是繁琐且费时的数值曲线拟合技术。为了构建用于CMC的计算有效的多尺度分析平台,这项工作旨在为代表纤维,相间和基质相互作用的微尺度代表体积元素(RVE)提供渐近解。所开发的渐近解可以通过CDM模型捕获CMC的非线性响应。与数值方法相比,它大大降低了分层多尺度分析的计算成本。数值模型模拟真实的微观结构。利用CDM模型和RVE渐近解来研究CMC系统中的微观损伤机理。结果表明,所开发的方案在捕获文献中可用的实验方面表现良好,并提供了对CMCs中微尺度破坏机制的全面描述。所开发的框架可用于CMC系统的分层多尺度分析的未来发展。

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