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首页> 外文期刊>Journal of Reinforced Plastics and Composites >Microscopic progressive damage simulation of unidirectional composite based on the elastic-plastic theory
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Microscopic progressive damage simulation of unidirectional composite based on the elastic-plastic theory

机译:基于弹塑性理论的单向复合材料微观渐进损伤模拟

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Computational mechanics has been carried out to study the microscopic failure mechanisms of unidirectional fiber-reinforced polymer composites. A representative volume element of fiber random distribution based on molecules random collision model is established, with two dominant damage mechanisms, matrix plastic deformation and interfacial debonding included in the simulation by the extended Drucker-Prager model and cohesive zone model, respectively. The simulation results clearly reveal the damage process of the composites and the interactions of different damage mechanisms. It can be concluded that the transverse tension fracture initiates as interfacial debonding and evolves as a result of interactions between interfacial debonding and matrix plastic deformation, while the compression failure is dominated by matrix plastic damage. The longitudinal tension and compression are both dominated by fiber breakage, but longitudinal tension initiates as matrix plastic damage and longitudinal compression initiates as fiber microbuckling. Finite element method appropriately simulated the process of progressive damage of the fiber buckling failure, which is consistent with the observed result under scanning electron microscopy.
机译:已经进行了计算力学研究单向纤维增强聚合物复合材料的微观破坏机理。建立了基于分子随机碰撞模型的纤维随机分布的代表性体积元,并通过扩展的Drucker-Prager模型和内聚区模型分别模拟了两种主要的破坏机理,即基质塑性变形和界面剥离。仿真结果清楚地揭示了复合材料的损伤过程以及不同损伤机理之间的相互作用。可以得出结论,横向拉伸断裂始于界面剥离,并由于界面剥离与基体塑性变形之间的相互作用而演化,而压缩破坏则以基体塑性破坏为主。纵向张力和压缩力都以纤维断裂为主,但纵向张力由于基质塑性破坏而开始,而纵向压缩因纤维微屈曲而开始。有限元法适当地模拟了纤维屈曲破坏的渐进破坏过程,这与在扫描电子显微镜下观察到的结果一致。

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