埋于均匀和分层土壤中的接地网瞬态电压计算

A. D. de Araújo, W. L. D. de Azevedo, J. Filho, Jaimis Sajid Leon Colqui, Sergio Kuroakawa
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引用次数: 0

摘要

接地网是变电站人员和设备安全保护的重要保障。在这种情况下,GGs在故障或雷击期间为大电流提供低阻抗路径,以最小化步进电压和接触电压。文献中结合分布法和集总法提出了几种计算GG阻抗的模型。本文提出一种集总方法来表示由垂直电极(VEs)和水平电极(HEs)组成的GG。电极通过集总模型单独建模,并在ATP-EMTP软件中实现。采用四极子法计算了埋于层状土中的电磁发生器的接地阻抗,并采用矢量拟合技术得到了电路。HE表示基于电磁辐射理论,其中导体的每个部分都可以被视为载流导体。与文献中的传统模型相比,仿真结果表明,在从100 Hz到10 MHz的频率范围内,HV和VE的集总表示具有良好的性能。此外,研究结果表明,当在GGs中插入VES并考虑另一层土壤时,GPR和节点电压显著降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computing Transient Voltages on Grounding Grids Buried in Homogeneous and Stratified Soils
Grounding grids (GGs) are essential to guarantee protection to personnel and equipment in the electrical substation. In this context, GGs provide low impedance path to high currents during faults or lightning strikes to minimize the step and touch voltages. Several models to compute the impedance of the GG are presented in the literature combining distributed and lumped approach. In this paper, a lumped approach is developed to represent a GG composed by vertical (VEs) and horizontal electrodes (HEs). Electrodes are modelled individually by lumped models and implemented at the ATP-EMTP software. The grounding impedances of the VEs buried in a stratified soil are calculated by the quadripole approach and an electric circuit is obtained by the Vector Fitting technique. The HE representation is based on the electromagnetic radiation theory, where each segment of the conductor can be seen as a current-carrying conductor. Simulation results compared with the traditional models in the literature indicate a good performance of the lumped representation of the HV and VE for a frequency range that varies from 100 Hz up 10 MHz. Additionally, results have shown that when VES are inserted in GGs and another layer of soil is considered, the GPR and node voltages are significantly reduced.
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