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Anisotropic unilateral damage with initial orthotropy: A micromechanics-based approach

机译:具有初始正交各向异性的各向异性单边损伤:基于微力学的方法

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摘要

A micromechanics-based damage model able to describe the brittle response of initially anisotropic materials is presented. A special emphasis is put on the account of damage-induced anisotropy and unilateral behaviour related to microcracks closure effects. These both features clearly influence the inelastic deformation of microcracked materials and lead to even more complex consequences in the context of initial anisotropy. The aim of this work is then to derive a new strain-based formulation which allows representing the related interactions between all these phenomena. This is achieved through a recent two-dimensional energy-based micromechanical analysis that accounts for the fully anisotropic multilinear response of orthotropic materials weakened by arbitrarily oriented microcracks. On the other hand, the thermodynamics framework gives a standard procedure for the development of the damage evolution law. Throughout the paper, attention is put on the mathematical and thermodynamical consistency of the model to avoid difficulties usually associated to the simultaneous description of damage-induced anisotropy and unilateral effects. In addition to elastic constants, the model requires the identification of only two parameters related to damage evolution. The model has been implemented within the commercial finite-element code ABAQUS, and various numerical simulations are presented to illustrate its capabilities. Especially, evolution of the material symmetry and influence of opening-closure states of microcracks on the damage process are illustrated in the case of brittle matrix composites subjected to different loading cases (axis and off-axis loads, tension and compression, tension followed by compression).
机译:提出了一种基于微力学的损伤模型,该模型能够描述初始各向异性材料的脆性响应。特别强调的是与微裂纹闭合效应有关的损伤引起的各向异性和单方面行为。这两个特征显然会影响微裂纹材料的非弹性变形,并在初始各向异性的情况下导致更为复杂的后果。这项工作的目的是得出一种基于应变的新公式,该公式可以表示所有这些现象之间的相关相互作用。这是通过最近基于二维能量的微机械分析实现的,该分析解释了由于任意取向的微裂纹而削弱的正交各向异性材料的完全各向异性多线性响应。另一方面,热力学框架为破坏演化规律的发展提供了标准程序。在整篇论文中,都将注意力放在模型的数学和热力学一致性上,以避免通常与同时描述损伤引起的各向异性和单方面效应相关的困难。除了弹性常数,该模型仅需要识别与损伤演变有关的两个参数。该模型已在商业有限元代码ABAQUS中实现,并进行了各种数值模拟以说明其功能。尤其是,在脆性基体复合材料承受不同载荷情况(轴和离轴载荷,拉伸和压缩,拉伸然后压缩)的情况下,说明了材料对称性的演变以及微裂纹的开合状态对损伤过程的影响。 )。

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