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Analysis of frequency distribution of ground fault-current magnitude in transmission networks for electrical safety evaluation

机译:输电网络接地故障电流幅值的频率分布分析,用于电气安全评估

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摘要

Ground Potential Rise (GPR) evaluation under fault conditions is important for the evaluation of electrical safety risk to human beings who are present in and around electric installations. Current national and international standards recommend such evaluation is based on a set of 'worst-case' conditions that include a simplified fault current calculation procedure based on assuming a maximum value. Accordingly, this approach may lead to over-design of grounding systems in certain cases by overestimating individual risk. To address this and move towards a comprehensive probabilistic assessment of risk, a more detailed model of the electric network is required for fault current magnitude evaluation. This paper describes the application of the multi-conductor method to determine fault current distribution on transmission networks. First, a model of a portion of the UK transmission network is built and the fault current and its distribution among the phases, ground wire and ground is evaluated for three example fault positions. It is found that the position of the fault along the line, substation bus section status and proximity to generation affect greatly the current distribution. Then, a transmission model based on the national network is built, and the effects of system loading and generation on fault current magnitude were also considered. A complete frequency distribution of fault current magnitude is obtained and the results demonstrate the value of such description for the probabilistic assessment of human safety in grounding system design.
机译:故障条件下的接地电位上升(GPR)评估对于评估存在于电气装置中和周围的人的电气安全风险非常重要。当前的国家和国际标准建议这种评估基于一组“最坏情况”条件,其中包括基于假定最大值的简化故障电流计算程序。因此,在某些情况下,这种方法可能会因高估个人风险而导致对接地系统的过度设计。为了解决这个问题,并朝着对风险的综合概率评估的方向发展,需要一个更详细的电网模型来进行故障电流幅度评估。本文介绍了多导体方法在确定传输网络故障电流分布中的应用。首先,建立英国输电网络一部分的模型,并针对三个示例性故障位置评估故障电流及其在相,地线和地之间的分布。发现故障沿着线路的位置,变电站母线段的状态以及与发电的接近程度会极大地影响电流分布。然后,建立了基于国家网络的传输模型,并考虑了系统负荷和发电对故障电流幅值的影响。获得了故障电流幅度的完整频率分布,结果证明了这种描述对于接地系统设计中人身安全的概率评估的价值。

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