Computer aided design of an end corona protection system for accelerated voltage endurance testing at increased line frequency

C. Staubach, S. Kempen, F. Pohlmann, F. Jenau
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引用次数: 8

Abstract

Due to highly nonlinear material characteristics the design of end corona protection systems (ecp-system) is a time consuming process. In order to accelerate this process a finite element model is developed. The model takes the nonlinear electrical and thermal coupled material properties into account. Furthermore it is able to calculate the electric and thermal behaviour of a painted or taped ecp-system. In this paper a special model is used to design a 500 Hz ecp-system. The paper quantifies why it is not possible to apply the ecp-system that was designed for power frequency also at a ten times higher frequency. Such a system is needed to accelerate the determination of the voltage endurance characteristics enabling the qualifying process of new or modified stator groundwall insulation of large turbine generators. In the first step the electrical and thermal behaviour of the insulation system with an existing ecp-configuration (50 Hz and rated voltage of 27 kV) is recalculated for an increased frequency of 500 Hz and 33 kV. In the next step an optimized layout is calculated with a new numerical algorithm, which is implemented in the finite element calculation and being efficient with calculation time. The newly developed design is verified by a test setup operating at 500 Hz and the electrical field strength distribution and temperature profile is measured.
提高线路频率下加速电压耐久试验的端电晕保护系统的计算机辅助设计
由于材料的高度非线性特性,末端电晕保护系统的设计是一个耗时的过程。为了加速这一过程,建立了有限元模型。该模型考虑了材料的非线性电、热耦合特性。此外,它还能够计算涂漆或胶带的ecp系统的电学和热行为。本文采用一个特殊的模型来设计一个500hz的电磁系统。本文量化了为什么不可能在十倍高的频率上应用为工频设计的ecp系统。需要这样一个系统来加速确定电压耐久特性,从而使大型涡轮发电机新的或改进的定子地壁绝缘的鉴定过程成为可能。在第一步中,重新计算现有ecp配置(50 Hz,额定电压为27 kV)下绝缘系统的电气和热性能,频率增加到500 Hz和33 kV。其次,采用一种新的数值算法进行优化布局的计算,该算法在有限元计算中实现,计算时间较短。新开发的设计通过500 Hz的测试装置进行了验证,并测量了电场强度分布和温度分布。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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