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Parametrically homogenized continuum damage mechanics (PHCDM) models for composites from micromechanical analysis

机译:基于微力学分析的复合材料参数均质化连续损伤力学(PHCDM)模型

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This paper develops a parametrically homogenized continuum damage mechanics (PHCDM) model for unidirectional fiber reinforced epoxy composites undergoing progressive damage. The PHCDM models are designed to overcome limitations of prohibitive computational overhead associated with many homogenization methods. They are thermodynamically consistent, reduced order continuum models with explicit representation of microstructural morphology through strategically determined parameters. The PHCDM model is derived from detailed micromechanics simulations of the representative volume element (RVE) using energy equivalence principles. Micromechanical failure is due to fiber-matrix interface debonding and matrix cracking. The macroscopic PHCDM models represent damage anisotropy through a second order damage tensor that contributes to the evolution of a damage surface in the space of damage work conjugate. The damage surface characterizes the initiation and evolution of damage in the composite. The constitutive relation between damage and its work conjugate is represented by an anisotropic fourth order damage surface tensor P-ijkl whose components are expressed as functions of current damage state. These are calibrated and validated from homogenized micromechanics (HMM) simulations. The PHCDM model is incorporated in a commercial finite element code and structural analysis of macroscopic composite components are executed for understanding concurrent damage and failure at multiple scales. (C) 2018 Elsevier B.V. All rights reserved.
机译:本文开发了单向纤维增强环氧复合材料遭受渐进式损伤的参数均质连续损伤力学(PHCDM)模型。 PHCDM模型旨在克服与许多同质化方法相关的计算开销过大的局限性。它们是热力学上一致的,降阶的连续模型,通过策略确定的参数明确表示了微结构形态。 PHCDM模型是使用能量等效原理从代表性体积元素(RVE)的详细微力学模拟得出的。微观机械故障是由于纤维-基体界面剥离和基体开裂。宏观PHCDM模型通过二阶损伤张量表示损伤各向异性,该张量有助于在损伤功共轭空间中损伤表面的演化。损伤表面表征了复合材料中损伤的发生和发展。损伤及其功共轭之间的本构关系用各向异性的四阶损伤表面张量P-ijkl表示,其分量表示为当前损伤状态的函数。这些都是通过均质微力学(HMM)模拟进行校准和验证的。 PHCDM模型被包含在商业有限元代码中,并对宏观复合组件进行结构分析,以了解多尺度同时发生的损坏和破坏。 (C)2018 Elsevier B.V.保留所有权利。

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