Phase-Field Modeling of Damage and Fracture in Laminated Unidirectional Fiber Reinforced Polymers

A. Dean, Pavan Kumar, Ammar Babiker, M. Brod, S. A. M. Ahmed, J. Reinoso, E. Mahdi
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引用次数: 1

Abstract

The damage and fracture behavior of Fiber Reinforced Polymers (FRPs) is quite complex and is different than the failure behavior of the traditionally employed metals. There are various types of failure mechanisms that can develop during the service life of composite structures. Each of these mechanisms can initiate and propagate independently. However, in practice, they act synergistically and appear simultaneously. The difficulties that engineers face to understand and predict how these different failure mechanisms result in a structural failure enforce them to use high design safety factors and also increases the number of certification tests needed. Considering that the experimental investigations of composites can be limited, very expensive, and time-consuming, in this contribution the newly developed multi Phase-Field (PF) fracture model [1] is employed to numerically study the failure in different Unidirectional Fiber Reinforced Polymers (UFRPs) laminates, namely, fracture in single-edge notched laminated specimens, matrix cracking in cross-ply laminates, and delamination migration in multi-layered UFRPs. The formulation of the PF model incorporates two independent PF variables and length scales to differentiate between fiber and inter-fiber (matrix-dominated) failure mechanisms. The physically motivated failure criterion of Puck is integrated into the model to control the activation and evolution of the PF parameters. The corresponding governing equations in terms of variational formulation is implemented into the Finite Element (FE) code ABAQUS utilizing the user-defined subroutines UMAT and UEL.  
单向纤维增强层合聚合物损伤与断裂的相场模拟
纤维增强聚合物(frp)的损伤和断裂行为非常复杂,与传统金属材料的破坏行为不同。在复合材料结构的使用寿命期间,可能出现多种类型的破坏机制。这些机制中的每一个都可以独立地启动和传播。然而,在实践中,它们协同作用,同时出现。工程师在理解和预测这些不同的失效机制如何导致结构失效方面面临的困难迫使他们使用高设计安全系数,同时也增加了所需认证测试的数量。考虑到复合材料实验研究的局限性、昂贵和耗时,本文采用新开发的多相场(PF)断裂模型[1]对不同单向纤维增强聚合物(Unidirectional Fiber Reinforced Polymers, UFRPs)层合材料的破坏进行了数值研究,即单边缺口层合试样的断裂、交叉层合材料的基体开裂和多层纤维增强聚合物(Unidirectional Fiber Reinforced Polymers, UFRPs)层合材料的分层迁移。PF模型的公式包含两个独立的PF变量和长度尺度,以区分纤维和纤维间(基质主导)的破坏机制。将Puck的物理驱动失效准则集成到模型中,以控制PF参数的激活和演化。利用用户自定义的子程序UMAT和UEL,将相应的变分形式控制方程实现到有限元程序ABAQUS中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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