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Electric Field Evaluation and Optimization of Connecting Electrodes in Full-Scale Indoor VSC-HVDC Converter Station

机译:全尺寸室内VSC-HVDC转换站连接电极的电场评价与优化

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In order to evaluate corona-free performance of the key HV connecting electrodes in one ±320kV VSC-HVDC indoor converter station, the equivalent 3-D models of different electrode types for electric field simulation were built with finite-element method (FEM) according to the preliminary designs. Considering the influence of devices nearby, full-scale models of all the indoor parts of the converter station were established as the boundary conditions for electric field calculation, including the indoor arm reactor yard, valve hall and DC yard. The potential and electric field distribution of the full-scale models were calculated. The maximum electric field strength of each connecting electrode was obtained and an optimization design was proposed for the electrodes whose surface field strength exceeded the critical value for evaluation. The results show that the full-scale simulation models of indoor converter station could reflect the difference of electric field distribution of the connecting electrodes with the same shape and various installation positions. For the preliminary electrode designs, serious electric field distortion occurred at the surfaces of some busbar connectors and terminal electrodes under operating condition. After optimization, the maximum field strength could decrease from 43.6kV/cm to 21.5kV/cm and the corona-free performance could be predicted. The optimized design scheme passed the corona tests and the research method could provide references for the development of connecting electrodes design and corona-free performance evaluation for VSC-HVDC or other indoor station.
机译:为了在一个±320kV VSC-HVDC室内转换器站中评估关键HV连接电极的无电晕性能,通过有限元方法(FEM)建立了电场模拟的不同电极类型的等效3-D模型初步设计。考虑到附近设备的影响,转换器站的所有室内部分的全尺寸模型被建立为电场计算的边界条件,包括室内扶手架,阀门厅和DC院。计算满量程模型的电位和电场分布。获得了每个连接电极的最大电场强度,并且提出了优化设计,该电极是表面场强超过评估临界值的临界值。结果表明,室内转换站的全规模仿真模型可以反映具有相同形状和各种安装位置的连接电极的电场分布的差异。对于初步电极设计,在一些母线连接器和终端电极的情况下发生严重的电场失真和操作条件下的终端电极。优化后,最大场强可从43.6kV / cm降至21.5kV / cm,并且可以预测无电晕性能。优化的设计方案通过了电晕测试,研究方法可以为VSC-HVDC或其他室内站的连接电极设计和电晕性能评估提供参考。

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