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Modelling distinct failure mechanisms in composite materials by a combined phase field method

机译:通过组合相场法对复合材料中不同的破坏机理进行建模

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摘要

A numerical computational framework that combines a phase field model (PFM) and cohesive element (CE) for modelling progressive failure in composite material is proposed. In this setting, cracks in single material and the interface are captured separately by using the PFM and CE. A unified PFM that incorporates general cohesive softening laws is adopted for quasi-brittle fracture process. An energy split scheme is used to prevent material cracking under compressive state. The irreversibility of the damage evolution is enforced by introducing a history related energy density. The compatibility issue between the CE and PFM is considered for accurately capturing complicated failure mechanisms in composite. The developed approach is implemented into commercial software ABAQUS through user-defined subroutine element (UEL). Validation is made by modelling an experiment on delamination migration of a cross ply composite. Failure mechanisms including delamination, matrix crack, and location of delamination migration that observed in the experiment are all well captured. Moreover, the importance of considering the compatibility between CE and other numerical methods is discussed through a complementary modelling.
机译:提出了一种将相场模型(PFM)和内聚元素(CE)相结合的数值计算框架,用于对复合材料中的渐进破坏进行建模。在这种设置下,使用PFM和CE可以分别捕获单一材料和界面中的裂纹。准脆性断裂过程采用了结合了一般内聚软化规律的统一PFM。能量分配方案用于防止材料在压缩状态下破裂。通过引入与历史相关的能量密度,可以实现破坏演化的不可逆性。考虑到CE和PFM之间的兼容性问题,可以准确地捕获复合材料中的复杂故障机制。通过用户定义的子例程元素(UEL)将开发的方法实施到商业软件ABAQUS中。通过对横向复合材料分层迁移的实验进行建模来进行验证。实验中观察到的破坏机制包括分层,基体裂纹以及分层迁移的位置都可以很好地捕获。此外,通过补充建模讨论了考虑CE与其他数值方法之间兼容性的重要性。

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