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Modelling of lightning streamer formation and propagation in wind turbine blades

机译:风力机叶片中雷电流的形成与传播模拟

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摘要

The positioning of lightning air terminations along a wind turbine blade is a complex issue to consider when designing the lightning protection of wind turbine blades. According to the IEC 61400-24 on lightning protection of wind turbines, the interception efficiency depends on the effectiveness of the air termination in enhancing the electric field and attracting the lightning discharge, thus shielding the blade surface and preventing electrical breakdown of the blade material. However, the number and location of the discrete receptors may be difficult to establish, since their performance is significantly influenced by the presence of conducting materials inside the blade. The design and validation of the lightning air termination system of a blade, as well as the evaluation of the effects of internal conductive components, involve high voltage tests, which are expensive and usually require complex setups. Furthermore, the tests may need to be repeated when a new conducting element is included in the blade with unpredictable effects for the lightning protection system. Numerical methods to determine the areas of a structure more likely to be struck by lightning have proved to be a useful tool to establish the preliminary design of the lightning protection of wind turbines. However, these methods mainly concern the lightning exposure on a macroscopic level while more detailed models containing the blade internals with multiple streamer initiations will add great value to the detailed design process. The present paper presents a method to investigate the origin and propagation of streamers from different conductive elements of the blade when exposed to a high electric field. The calculations are performed using dynamic simulations with the finite element method, and the results have been correlated with high voltage tests in the laboratory. The algorithms developed are intended to be a new and improved tool for the design of the blade lightning protection system, in particular to assess the effectiveness of the air termination system and the effects of internal conductive materials. The simulation models can involve a high level of detail and therefore be used in the detailed positioning of air terminations in blades equipped with conductive elements such as carbon fiber or electrical monitoring systems (load, temperature, etc.).
机译:在设计风力涡轮机叶片的雷电防护时,要沿着风力涡轮机叶片放置雷电终端是一个复杂的问题。根据关于风力涡轮机防雷的IEC 61400-24,拦截效率取决于空气终端在增强电场和吸引雷电放电,从而屏蔽叶片表面并防止叶片材料电击穿方面的有效性。然而,离散接收器的数量和位置可能难以确定,因为它们的性能受到叶片内部导电材料的存在的显着影响。叶片的雷电终端系统的设计和验证,以及内部导电组件的效果评估,都涉及高压测试,该测试昂贵且通常需要复杂的设置。此外,当刀片中包含新的导电元件而对雷电保护系统产生不可预测的影响时,可能需要重复测试。事实证明,用数值方法确定更可能被雷击的结构区域是建立风力涡轮机防雷初步设计的有用工具。但是,这些方法主要涉及宏观的雷电暴露,而包含带有多个拖缆启动的叶片内部的更详细的模型将为详细的设计过程增加巨大的价值。本论文提出了一种方法,用于研究暴露于高电场中时叶片不同导电元件上的拖缆的起源和传播。使用有限元方法的动态模拟进行计算,结果已与实验室的高压测试相关。所开发的算法旨在成为叶片防雷系统设计的一种新的改进工具,尤其是评估空气终端系统的有效性和内部导电材料的影响。仿真模型可能涉及到较高的详细程度,因此可用于空气终端在装有导电元件(例如碳纤维或电气监控系统(负载,温度等))的叶片中的详细定位。

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