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Modeling flashover voltage (FOV) of polluted HV insulators using artificial neural networks (ANNs)

机译:使用人工神经网络(ANN)对受污染的高压绝缘子的闪络电压(FOV)进行建模

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This paper attempts to apply artificial intelligent techniques in high voltage applications and especially to estimate the critical flashover voltage (FOV) for polluted insulators, using experimental measurements carried out in an insulator test station according to the IEC norm and a mathematical model based on the characteristics of the insulator: the diameter, the height, the creepage distance, the form factor and the equivalent salt deposit density and estimates the critical flashover voltage. Two types of artificial neural networks (ANNs) are designed to establish a nonlinear model between the above mentioned characteristics and the critical flashover voltage. The ANNs models, algorithms, and tools have been developed using the software package Matlab. The obtained results are promising and insure that artificial intelligent techniques can estimate the critical flashover voltage for new designed insulators with different operating conditions and constitute an indispensable models that can be used in field simulations of various parameters for polluted insulators. Further comparative analysis of the estimated results with the measured data collected from the site measurement amply demonstrate the effectiveness of the use of Artificial intelligent techniques for modeling (ANNs) of FOV.
机译:本文尝试根据IEC规范在绝缘子测试站中进行的实验测量和基于特性的数学模型,将人工智能技术应用到高压应用中,尤其是估计被污染绝缘子的临界闪络电压(FOV)。绝缘子的直径:高度,爬电距离,形状系数和等效盐沉积密度,并估算临界闪络电压。设计了两种类型的人工神经网络(ANN),以在上述特性和临界闪络电压之间建立非线性模型。使用软件包Matlab开发了ANN模型,算法和工具。获得的结果令人鼓舞,并确保人工智能技术可以估计具有不同工作条件的新型绝缘子的临界闪络电压,并构成不可缺少的模型,可用于对污染绝缘子的各种参数进行现场模拟。对估计结果的进一步比较分析与从现场测量中收集到的测量数据充分证明了使用人工智能技术对FOV建模(ANN)的有效性。

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