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Applications of the FDTD method to lightning electromagnetic pulse and surge simulations

机译:FDTD方法在雷电电磁脉冲和浪涌模拟中的应用

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Electromagnetic computation methods (ECMs) have been widely used in analyzing lightning electromagnetic pulses (LEMPs) and lightning-caused surges in various systems. One of the advantages of ECMs, in comparison with circuit simulation methods, is that they allow a self-consistent full-wave solution for both the transient current distribution in a 3D conductor system and resultant electromagnetic fields, although they are computationally expensive. Among ECMs, the finite-difference time-domain (FDTD) method for solving Maxwell's equations has been most frequently used in LEMP and surge simulations. In this paper, we review applications of the FDTD method to LEMP and surge simulations, including (i) lightning electromagnetic fields at close and far distances; (ii) lightning surges on overhead power transmission line conductors and towers, (iii) lightning surges on overhead distribution and telecommunication lines; (iv) lightning electromagnetic environment in power substations; (v) lightning surges in wind-turbine-generator towers; (vi) lightning surges in photovoltaic (PV) arrays; (vii) lightning electromagnetic environment in electric vehicles (EVs); (viii) lightning electromagnetic environment in airborne vehicles; (ix) lightning surges and electromagnetic environment in buildings; and (x) surges on grounding electrodes.
机译:电磁计算方法(ECM)已被广泛用于分析雷电电磁脉冲(LEMP)和各种系统中的闪电引起的浪涌。与电路仿真方法相比,ECM的优点之一是它们允许对3D导体系统中的瞬态电流分布和所得到的电磁场中的瞬态电流分布进行自我一致的全波解决方案,尽管它们是计算昂贵的。在ECM中,用于解决Maxwell等式的有限差分时间域(FDTD)方法最常用于LEMP和浪涌模拟。在本文中,我们审查了FDTD方法对LEMP和浪涌模拟的应用,包括(i)雷电电磁场近距离; (ii)射频电力传输线导线和塔上的闪电浪涌,(iii)闪电飙升在顶部分配和电信线路上; (iv)动力变电站闪电电磁环境; (v)风力涡轮发电机塔中的闪电浪涌; (vi)光伏(PV)阵列中的闪电浪涌; (vii)电动汽车闪电电磁环境(EVS); (viii)空中车辆中的雷电电磁环境; (ix)建筑物的闪电浪涌和电磁环境; (x)接地电极上的浪涌。

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