用神经网络方法优化树脂浸渍纸特高压直流壁套分级环

Chenyu Zhao, Zongren Peng, Peng Liu, Naiyi Li, Shuo Wang
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引用次数: 1

摘要

提出了一种利用神经网络优化±1100kV特高压直流(UHVDC)壁套分级环的方法。首先,应用有限元法计算了不同管径、环径和分级环安装位置下空心绝缘子表面电场分布,并根据数值结果确定了优化目标;然后利用参数扫描法计算的300组数据,用L- M算法对神经网络模型进行训练。最后,根据神经网络拟合结果对分级环参数进行优化。优化后的分级环使空心绝缘子表面电场分布均匀。本文可为特高压直流墙衬套结构设计提供参考。
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Optimization of Grading Ring for Resin Impregnated Paper UHVDC Wall Bushing Using Neural Network Method
In this paper, a method using neural network for optimizing the grading ring of ±1100kV ultra-high voltage direct current (UHVDC) wall bushing is presented. Firstly, the finite element method (FEM) is applied to calculate the electric field distribution along hollow insulator surface with various pipe diameter, ring diameter and installation position of the grading ring and the optimal goal is set according to the FEM numerical results. Then the neural network model is built and trained with L- M algorithm using 300 sets of data calculated by the method of parametric scanning. Finally, the parameters of grading ring are optimized according to the neural network fitting results. The optimized grading ring uniforms the electric field distribution along the hollow insulator surface. This paper can provide a reference on structural design of UHVDC wall bushing.
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