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Optimization Arrangement of angle rings in Converter Transformer Valve Winding End Insulation Structure

机译:转换器变压器阀绕组绝缘结构中角度环的优化布置

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Angle ring which be placed in the big gap between the winding end and the yoke, could improve the electric field distribution and the insulation reliability of the transformer. Therefore, the optimal arrangement of the angle ring is an important part of the main insulation structure design. In this paper, multi-objective optimization algorithm, particle swarm optimization algorithm and finite element sub-model calculation technology were used to optimize the inside and outside angle rings arrangement of the valve winding end insulation structure, with maintaining the original number, the thickness of the angle rings and arc radius unchanged. During the optimization process, the minimum insulation margin along the electric fluxlines in each assessment oil clearance was selected as the objective function of optimization. The purpose was to make insulation margin along the direction of the electric fluxlines as close as possible among the oil gap. After optimization, it not only made the minimum insulation margin floating range of each assessment clearance smaller, but also increased the minimum insulation margin of the entire end insulation. After optimization, the minimum margin of the outside oil gap increased from 1.35 to 1.54, and the minimum margin of the inside oil gap increased from 1.4 to 1.57.
机译:置于绕组端和轭之间的巨大间隙中的角度环可以改善变压器的电场分布和绝缘可靠性。因此,角环的最佳布置是主要绝缘结构设计的重要组成部分。在本文中,多目标优化算法,粒子群优化算法和有限元的子模型计算技术用于优化阀绕组端绝缘结构的内侧和外侧角环布置,保持了原有的数目,厚度角度环和弧半径不变。在优化过程中,选择沿着每次评估油间隙中的电气线的最小绝缘裕度被选为优化的目标函数。目的是沿着电磁势的方向制造绝缘边缘,在油间隙中尽可能接近。优化后,它不仅使每个评估间隙的最小绝缘裕度浮动范围更小,而且还增加了整个最终绝缘的最小绝缘余量。优化后,外部油间隙的最小裕度从1.35增加到1.54,内部油间隙的最小边际幅度从1.4增加到1.57。

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