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首页> 外文期刊>Polymer Composites >A study on low-velocity impact performance of notched GFRP composites repaired by different composite patches: Experiment and modeling
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A study on low-velocity impact performance of notched GFRP composites repaired by different composite patches: Experiment and modeling

机译:不同复合贴片修复缺口GFRP复合材料的低速冲击性能研究:实验与造型

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摘要

Low-velocity impact performance of notched glass fiber reinforced plastic composites repaired by bonding external composite patches was investigated by experimental and numerical methods. Various patches of different fiber materials such as carbon and glass fiber and thickness were considered under different impact energy levels. The continuum damage mechanics based on a dynamic progressive damage model was using to build the finite element model and cohesive elements were used between the composite patch and notched composite plate. Five different failure criteria based on three-dimensional Hashin damage models were implemented by the explicit finite element subroutine ABAQUS-VUMAT with degradation model and used to compare experimental damage areas. The experimental contact force, kinetic energy histories, and experimental damage areas were calculated and compared the numerical ones. While the experimental data confirm the efficiency of the proposed model, they show consistent results with the numerical model. Finally, using the composite patch is succeeded to avoid impact damage. This research provides fundamental support for the appropriate selection of external composite patch type and use of the degradation model with different failure model to achieve high-efficiency simulation under impact loading.
机译:通过实验和数值方法研究了通过粘合外部复合贴片修复的缺口玻璃纤维增​​强塑料复合材料的低速冲击性能。在不同的冲击能级水平下考虑各种不同纤维材料和厚度的诸如碳和玻璃纤维的斑块。基于动态渐进式损伤模型的连续损伤力学是使用的,用于构建有限元模型,在复合贴片和缺口复合板之间使用内聚元件。基于三维Hashin损坏模型的五种不同的故障标准由具有劣化模型的显式有限元子程序ABAQUS-VUMAT实现,并用于比较实验损伤区域。计算实验接触力,动能历史和实验损伤区域并比较数值。虽然实验数据确认了所提出的模型的效率,但它们显示了数值模型的一致结果。最后,使用复合补丁成功避免了影响损坏。 This research provides fundamental support for the appropriate selection of external composite patch type and use of the degradation model with different failure model to achieve high-efficiency simulation under impact loading.

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