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Bayesian optimization of external lightning protection system of HV substations

机译:高压变电站外部防雷系统的贝叶斯优化

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This paper presents a method for optimizing the geometry of lightning receptors of the external lightning pro-tection system (LPS) of the high voltage air-insulated substation (AIS), which is based on the Bayesian optimization with Gaussian processes. This is a statistical optimization method, which is here additionally interfaced with a stochastic approach to the analysis of lightning exposure of AIS to direct lightning strikes. Bayesian optimization assumes that there is no closed-form expression for the objective function, only a stochastic process that uses certain inputs (disposition and geometry of lightning receptors) to produce a noise-corrupted outputs (i.e. level of shielding), while the process itself can be regarded as a black box model. Namely, the analysis of shielding of LPS is seen as an iterative stochastic process that converges to a certain criterion, rather than an exact analytical calculation. Lightning shielding analysis is based on the Monte Carlo method and the electrogeometric model. The proposed Bayesian optimization method will be applied on a concrete high voltage substation test case.
机译:本文提出了一种基于高斯过程的贝叶斯优化方法,对高压空气绝缘变电站(AIS)的外部避雷系统(LPS)的雷电接收器的几何形状进行优化的方法。这是一种统计优化方法,在此还可以通过随机方法与AIS对直接雷击的AIS雷电暴露进行分析。贝叶斯优化假设目标函数没有闭合形式的表达式,只有一个随机过程,该过程使用某些输入(雷电接收器的位置和几何形状)来产生噪声破坏的输出(即屏蔽级别),而过程本身可以看作是黑匣子模型。即,对LPS屏蔽的分析被视为收敛于某个标准的迭代随机过程,而不是精确的分析计算。雷电屏蔽分析基于蒙特卡洛方法和电几何模型。提出的贝叶斯优化方法将应用于具体的高压变电站测试案例。

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