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Damage analysis of carbon fabric-reinforced composites under dynamic bending

机译:碳纤维增强复合材料动态弯曲损伤分析

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Fabric-reinforced polymer composites used in various applications can be subjected to dynamic loading such as impacts causing bending deformations. Under such loading scenarios, composite structures demonstrate multiple modes of damage and fracture if compared with more traditional, macroscopically homogeneous, structural materials such as metals and alloys. Among damage and fracture modes are fibre breaking, transverse matrix cracking, debonding between fibres and matrix and delamination. Damage evolution affects both their in-service properties and performance that can deteriorate with time. These failure modes need adequate means of analysis and investigation, the major approaches being experimental characterization and numerical simulations. This study deals with analysis of damage in carbon fabric-reinforced polymers (CFRP) under dynamic bending. The properties of, and damage evolution in, the composite laminates were analysed using a combination of mechanical testing and microstructural damage analysis using optical microscopy. Experimental tests are carried out to characterize the behavior of CFRP composites under large-deflection dynamic bending in Izod type impact tests using Resil Impactor. A series of impact tests is carried out at various energy levels to obtain the force-time diagrams and absorbed energy profiles for laminates. Three-dimensional finite element (FE) models are implemented in the commercial code Abaqus/Explicit to study the deformation behavior and damage in composites for cases of dynamic bending. In these models, multiple layers of bilinear cohesive-zone elements are placed at the damage locations identified in microscopic study. Initiation and progression of inter-ply delamination at the impact and bending locations is studied numerically by employing cohesive-zone elements between each ply of the composite. Stress-based criteria are used for damage initiation, and fracture-mechanics techniques to capture its progression in composite - aminates. The developed numerical models are capable to simulate these damage mechanisms as well as their subsequent interaction observed in tests and microscopy. Simulations results showed a good agreement when compared to experimentally obtained transient response of the woven laminates.
机译:各种应用中使用的织物增强聚合物复合材料可以承受动态载荷,例如引起弯曲变形的冲击。在这种载荷情况下,与更传统的宏观均匀结构材料(例如金属和合金)相比,复合结构会表现出多种破坏和断裂模式。破坏和断裂方式包括纤维断裂,横向基体开裂,纤维与基体之间的脱粘和分层。损害的演变会影响其使用中的性能和性能,并会随着时间的推移而恶化。这些失效模式需要足够的分析和调查手段,主要方法是实验表征和数值模拟。这项研究涉及动态弯曲下碳纤维增强聚合物(CFRP)的损伤分析。结合机械测试和使用光学显微镜的微观结构损伤分析,分析了复合层压板的性能和损伤演变。在使用Resil Impactor的Izod型冲击试验中,进行了实验测试以表征CFRP复合材料在大挠度动态弯曲下的行为。在各种能量水平下进行了一系列冲击试验,以获取层压板的力时图和吸收能曲线。商业代码Abaqus / Explicit中实现了三维有限元(FE)模型,以研究动态弯曲情况下复合材料的变形行为和损伤。在这些模型中,多层双线性内聚区元素放置在微观研究中确定的损伤位置。通过在复合材料的每个层之间采用内聚区元素,对在冲击和弯曲位置的层间分层的引发和进行进行了数值研究。基于应力的准则用于破坏的开始,而断裂力学技术则用于捕获其在复合材料中的发展过程。所开发的数值模型能够模拟这些损坏机制以及随后在测试和显微镜下观察到的相互作用。与实验获得的机织层压板的瞬态响应相比,仿真结果显示出良好的一致性。

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