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FDTD-Based Lightning Surge Simulation of an HV Air-Insulated Substation With Back-Flashover Phenomena

机译:基于FDTD的带有反闪现象的高压空气绝缘变电站的雷电冲击仿真

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The operating voltages of low-voltage control circuits in power plants and substations have decreased with the installation of digital control equipment. This increases the susceptibility of control equipment to abnormal surges, which arise mainly from lightning. To protect control equipment from lightning, it is necessary to predict lightning surges invading power plants and substations and design effective lightning protection methodologies. Compared with conventional simulation techniques based on circuit theory, full-wave numerical approaches are advantageous in handling three-dimensional structures such as transmission line towers, grounding structures, nonhorizontal wires, such as incoming power lines to power plants and substations, and lightning-induced effects. In this study, to apply the finite-difference time-domain (FDTD) method to the lightning surge analysis of an air-insulated substation, we first propose techniques for simulating the nonlinear breakdown characteristics of short-air-gap arcing horns and transmission line surge arresters installed in 77 kV transmission lines for FDTD-based surge simulations, and compare the breakdown characteristics calculated using the proposed techniques with measured results for validation. Second, as an example of the application of the proposed techniques to practical surge analysis, it is confirmed that we can reproduce the measured results of lightning surges invading a 77 kV air-insulated substation in the case of a direct lightning strike to its nearby transmission line tower by taking into account lightning-induced voltages arising from the lightning current flowing through the lightning channel and transmission line tower, which are commonly ignored in conventional circuit-theory-based simulations, multiphase back-flashover phenomena, and the effect of applied AC voltages.
机译:随着数字控制设备的安装,发电厂和变电站中低压控制电路的工作电压已经降低。这增加了控制设备对异常电涌的敏感性,异常电涌主要是由雷电引起的。为了保护控制设备免受雷击,有必要预测侵入发电厂和变电站的雷电浪涌,并设计有效的防雷方法。与基于电路理论的传统仿真技术相比,全波数值方法在处理三维结构(例如输电线路铁塔,接地结构,非水平导线(例如,发电厂和变电站的输入电力线)以及雷电感应的三维结构)方面具有优势效果。在这项研究中,为了将有限差分时域(FDTD)方法应用于空气绝缘变电站的雷电浪涌分析,我们首先提出了模拟短气隙电弧喇叭和输电线路的非线性击穿特性的技术。安装在77 kV输电线路中的电涌放电器,用于基于FDTD的电涌仿真,并将使用建议的技术计算的击穿特性与测量结果进行比较,以进行验证。其次,作为将拟议技术应用到实际浪涌分析中的一个示例,可以确认,如果对附近输电线路有直接雷击,我们可以重现入侵77 kV空气绝缘变电站的雷电冲击的测量结果。考虑到流经雷电通道和输电线路铁塔的雷电流产生的雷电感应电压,在传统的基于电路理论的模拟中通常会忽略该电压,多相反向闪络现象以及施加的交流电的影响电压。

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