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Stochastic assessment of voltage dips caused by transformer energisation

机译:变压器通电引起的电压骤降的随机评估

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摘要

Energisation of large power transformers may cause significant voltage dips, of which the severity largely depends on a number of parameters, including circuit breaker closing time, transformer core residual flux and core saturation characteristic, and network conditions. Since most of the parameters are of stochastic nature, Monte Carlo simulation was conducted in this study to stochastically assess the voltage dips caused by transformer energisation in a 400 kV grid, using a network model developed and validated against field measurements. A dip frequency pattern was identified over 1000 stochastic runs and it was found to be sensitive to residual flux distribution but insensitive to closing offset time distribution. The probability of reaching the worst case dip magnitude (estimated under the commonly agreed worst energisation condition) was found to be lower than 0.5%; about 80% of the dips are likely to be with magnitudes lower than 0.6 pu of the worst case. Nevertheless, there are dips with magnitudes exceeding the worst case dip magnitude, indicating the inadequacy of deterministic assessment approach by using the commonly agreed worst energisation condition.
机译:大型电力变压器的通电可能会导致明显的电压骤降,其严重性在很大程度上取决于许多参数,包括断路器的闭合时间,变压器铁芯的剩余磁通和铁芯饱和特性以及网络条件。由于大多数参数都是随机性质的,因此在本研究中进行了蒙特卡洛模拟,以使用开发并针对现场测量进行验证的网络模型,随机评估400 kV电网中变压器激励引起的电压骤降。在1000个随机运行中确定了一个下垂频率模式,发现它对剩余磁通分布敏感,但对闭合偏移时间分布不敏感。发现达到最坏情况下倾角幅度的可能性(在公认的最坏通电条件下估算)低于0.5%;大约80%的下降幅度可能小于最坏情况下的0.6 pu。然而,仍有一些跌幅超过最坏情况下的跌幅,这表明通过使用公认的最差通电条件,确定性评估方法是不够的。

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