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Electrical and thermal performance of different core materials applied in wind turbine blades under lightning strikes

机译:雷击下应用于风力涡轮机叶片的不同芯材的电气和热性能

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摘要

Wind turbine blades are subject to lightning strikes, which may result in severe damage of the blade materials. The withstanding performance of different blade materials needs to be classified in order to maximize their operational safety. Lightning impulse voltages were applied to model blades with different core materials (polyvinyl chloride [PVC], polyethylene terephthalate [PET], and balsa wood) to characterize the breakdown points (electrically vulnerable areas) on the blades. It has been found that the areas subjected to puncturing are located in the back part (toward the trailing edge) of the sandwich structure, especially at locations close to the main beam. Model blades made of balsa wood are more susceptible to puncturing breakdown than PVC and PET. High impulse currents were imposed at the most probably stricken spots in the impulse voltage tests to compare the severity of damage for PVC, PET, and balsa wood in an attempt to understand the thermal effect of lightning discharge following the final jump. Results show that balsa wood is most resistive to while PVC suffers most damage due to the thermal impact of lightning. Molecular simulation of the chemical degradation process and thermal gas production dynamics was performed at atomic level to explain the damage mechanisms of the three core materials. The performance data of the blade core materials against lightning strike obtained in the present work provide strong guidance on the optimal design of wind turbine blade structure and selection of blade core material.
机译:风力涡轮机的叶片容易遭受雷击,这可能会严重损坏叶片的材料。需要对不同叶片材料的耐久性能进行分类,以最大程度地提高其操作安全性。雷电冲击电压被施加到具有不同芯材(聚氯乙烯[PVC],聚对苯二甲酸乙二酯[PET]和轻木)的模型叶片上,以表征叶片上的击穿点(电击区域)。已经发现,经受穿刺的区域位于夹层结构的后部(朝向后缘),特别是在靠近主梁的位置。由轻木制成的模型刀片比PVC和PET更易于刺穿。高冲击电流施加在冲击电压测试中最可能受灾的位置,以比较PVC,PET和轻木的损坏严重程度,以试图了解最终跳变后雷电放电的热效应。结果表明,轻木具有最强的抵抗力,而PVC由于雷电的热影响而遭受的破坏最大。在原子水平上进行了化学降解过程和热气产生动力学的分子模拟,以解释这三种核心材料的破坏机理。在本工作中获得的叶片核心材料的抗雷击性能数据为风机叶片结构的优化设计和叶片核心材料的选择提供了有力的指导。

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