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Simulation of current distribution in a wind turbine blade using the FDTD method

机译:使用FDTD方法模拟风力涡轮机叶片中的电流分布

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摘要

Lightning can pose one of the major natural threats to wind turbines. In special, rotor blades are the most sensitive components to lightning due to their material, constructive nature and movement. Modern multimegawatt wind turbine blades use a combination of glass fiber and carbon fiber reinforced plastic components (CFRP). The last one is electrically conductive and needs to be considered as part of the lightning protection system. In this paper, we present the application of the FDTD method to investigate the lightning current distribution in a wind turbine blade equipped with a 25 m CFRP spar. We found, that for low spar-to-down conductor bonding electric contact resistances, peak currents are higher in the spar, but most of the energy is conducted by the down conductor. The high peak currents in the CFRP would produce intense resistive voltage drops at the connections with the risk of sparks if milliohm connection resistances cannot be achieved. The simulations show that voltages between isolated CFRP laminates of the spar should not pose a threat of sparking if the insulation properties of glass fiber can be ensured in the entire spar. Dangerous voltages between the down conductor and the CFRP spar can occur if the bonding connection at the tip is located far from the end of the spar.
机译:闪电可以摆在风力涡轮机的主要自然威胁之一。在特殊的情况下,由于其材料,建设性的性质和运动,转子叶片是闪电最敏感的组件。现代多马瓦瓦风力涡轮机刀片使用玻璃纤维和碳纤维增强塑料部件(CFRP)的组合。最后一个是导电的,需要被认为是避雷系统的一部分。在本文中,我们介绍了FDTD方法的应用,研究了配备有25米CFRP翼梁的风力涡轮机叶片中的雷电流分布。我们发现,对于低副行机导体粘合电接触电阻,峰值电流较高,但大部分能量由下导体进行。如果不能实现毫米HM连接电阻,CFRP中的高峰电流将产生具有火花风险的连接处的强烈电阻电压下降。模拟显示,如果可以在整个翼梁中确保玻璃纤维的绝缘性能,则静脉间CFRP层压板之间的电压不应姿态出火花。如果尖端处的粘合连接位于距离翼梁的末端,则可以发生下导体和CFRP翼梁之间的危险电压。

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