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A finite-difference time-domain approach for the evaluation of electromagnetic fields radiated by lightning strikes to tall structures

机译:有限差分时域方法,用于评估雷击辐射到高层结构的电磁场

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We present an analysis of the electromagnetic fields at very close range from a tower struck by lightning. The electromagnetic fields are evaluated for observation points above, on the surface and below the ground plane characterized by a finite conductivity. The computations are obtained using the Finite-Difference Time-Domain (FDTD) technique, in which the so-called engineering models are incorporated to represent the spatial-temporal distribution of the current along the channel and along the strike object. The approach is tested using a set of simultaneously recorded data published in the literature consisting of the current measured at the top of the Peissenberg tower and the associated electric and magnetic fields and very good agreement has been found. Simulation results are performed for an observation point located 50 m from the base of the channel (or tower, when present) and for three cases, namely (i) a lightning strike to ground, and (ii) a lightning strike to a 168-m tall tower, and (iii) a lightning strike to a 553-m tall tower. The effect of the presence of the tower and the effect of finite ground conductivity on the generated above-ground and underground electromagnetic fields are illustrated and discussed. It is shown that the underground electric fields are markedly affected by the ground conductivity. The underground electric field is predominantly horizontal with a negative polarity. The vertical electric field component is characterized by a bipolar wave-shape. The ground conductivity affects in a lesser degree the magnetic field penetrating into the ground. Above the ground and on the ground surface, the vertical electric field and the azimuthal magnetic field generated by a lightning return stroke initiated at ground level are nearly insensitive to the height of the observation point above ground. For the considered distance range (50 m), they can be computed assuming the ground as a perfectly conducting plane. The magnetic field above ground at such close distance is virtually not affected by the ground conductivity. The presence of a tower results in a significant decrease of the vertical electric field in the immediate vicinity of the tower. Unlike the case of a ground-initiated return stroke, the above-ground vertical electric field associated with a return stroke to tall tower is very much affected by the ground conductivity. Depending on the value of this latter, this component could exhibit an inversion of polarity.
机译:我们对从雷电击中的塔架非常近距离处的电磁场进行了分析。对以有限电导率为特征的地面上方,表面和下方的观察点评估电磁场。这些计算是使用有限时域(FDTD)技术获得的,其中采用了所谓的工程模型来表示电流沿通道和沿打击对象的时空分布。该方法使用一组同时记录的数据进行了测试,这些数据包括在Peissenberg塔顶部测量的电流以及相关的电场和磁场,并且发现了很好的一致性。针对距离通道(或塔,如果存在)底部50 m处的观察点和三种情况(即(i)对地面的雷击和(ii)对168-米高的塔,以及(iii)553米高的塔的雷击。说明并讨论了塔的存在以及有限的地面电导率对生成的地上和地下电磁场的影响。结果表明,地下电场明显受地面电导率的影响。地下电场主要是水平的,带有负极性。垂直电场分量的特征在于双极性波形。地面电导率会较小程度地影响渗透到地面的磁场。在地面上方和地面上,由在地面发起的雷电回击产生的垂直电场和方位磁场几乎对地面上方观测点的高度不敏感。对于所考虑的距离范围(50 m),可以将地面假定为一个完美的导电平面进行计算。在这样近距离处的地面上方的磁场实际上不受地面电导率的影响。塔的存在导致塔附近的垂直电场显着减小。与地面引发的回程不同,与高塔回程相关的地上垂直电场在很大程度上受到地面电导率的影响。根据后者的值,该组件可能会显示极性反转。

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