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Analysis of damage modes of glass fiber composites subjected to simulated lightning strike impulse voltage puncture and direct high voltage AC puncture

机译:模拟雷击模拟雷击脉冲电压穿刺的玻璃纤维复合材料损坏模式分析及直接高压交流穿刺

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摘要

Understanding the damage mechanisms of fiber-reinforced polymer matrix composite materials under high voltage conditions is of great significance for lightning strike protection and high voltage insulation applications of composite structures. In this paper, we investigated effects of the lightning impulse (LI) voltage and high voltage alternating current (HVAC) puncture on damage modes of the electrically nonconductive glass fiber-reinforced polymer (GFRP) matrix composite materials through experimental tests and numerical simulations. The LI and HVAC tests represent the lightning strike and high voltage insulation cable puncture conditions, respectively. Our experimental examinations showed that GFRP composite specimens subjected to the LI voltage test exhibited distinct damage modes compared with those in the HVAC puncture test. The GFRP composite material suffered more charring and fiber vaporization in the HVAC puncture test, whereas less matrix charring and fiber vaporization but severe fiber breakage and delamination in response to the LI voltage tests. The findings indicate that the thermal effect dominates the damage of GFRP composites inflicted by the HVAC puncture test, whereas the mechanical impact effect governs the GFRP composite damage in the LI voltage test. In addition, the electric arc plasma formation during the puncture of the GFRP composite material was modeled through solving Maxwell's equations and the heat generation equations using finite element analysis. Simulation results provided insights on the effects of duration and intensity of the high voltage electric discharge on the composite damage.
机译:理解高压条件下纤维增强聚合物基质复合材料的损伤机制对于复合结构的雷击保护和高压绝缘应用具有重要意义。在本文中,我们通过实验测试和数值模拟研究了闪电脉冲(LI)电压和高压交流(HVAC)穿刺对电不导电玻璃纤维增​​强聚合物(GFRP)基质复合材料的损伤模式的影响。 LI和HVAC测试分别代表雷击和高压绝缘电缆穿刺条件。我们的实验检查表明,与HVAC穿刺试验中的那些相比,对Li电压测试进行的GFRP复合试样表现出明显的损伤模式。 GFRP复合材料在HVAC穿刺试验中遭受了更多的炭化和纤维蒸发,而较少的基质炭化和纤维蒸发,而是响应于LI电压测试的严重纤维破裂和分层。结果表明,热效应占据了HVAC穿刺试验造成的GFRP复合材料的损害,而机械冲击效果控制LI电压试验中的GFRP复合损伤。另外,通过使用有限元分析求解Maxwell等式和发热方程,模拟GFRP复合材料的穿刺期间的电弧等离子体形成。仿真结果提供了对高压放电持续时间和强度对复合损坏的影响的见解。

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