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Investigation on distribution of electro-thermal coupled field and improved design of ±1100 kV converter valve-side bushing

机译:电热耦合场分布研究及±1100 kV换流阀侧衬套的改进设计

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摘要

Compared to bushings with lower voltage levels, the +/- 1100 kV converter valve-side bushing has thicker radial insulation and longer axial insulation resulting in a more uneven temperature distribution and more severe electric field distortion, especially under high-ambient-temperature and high-current conditions. Improving the distribution of the electro-thermal coupled field of the bushing is critical for the safe operation of converter transformers. This study discusses the distribution of electro-thermal coupled field of a typical bushing and proposes a new method to evaluate the conductivity of multiple capacitor layers under inhomogeneous axial temperatures. The effects of four bushing designs are investigated as per the adjustment of the capacitor screen structure, the replacement of the current-carrying structure, and the modification of resin-impregnated paper material. The results show that merely adjusting the capacitor screens is not feasible due to size limitations. By decreasing heat accumulation, adopting a single-tube structure and increasing the thermal conductivity of resin-impregnated paper material can reduce electric field distortion to a certain extent. Unlike the other three methods, hierarchically controlling the material resistance effectively balances the internal and external electric fields. Simulation results demonstrate the feasibility of these methods to improve the distribution of the electro-thermal coupled field in the bushing.
机译:与较低电压等级的套管相比,+ /-1100 kV换流阀侧套管具有较厚的径向绝缘层和较长的轴向绝缘层,从而导致温度分布更加不均匀且电场畸变更严重,尤其是在高温和高温下-现在的情况。改善套管的电热耦合场的分布对于换流变压器的安全运行至关重要。这项研究讨论了典型套管的电热耦合场的分布,并提出了一种在轴向温度不均匀的情况下评估多个电容器层电导率的新方法。根据电容器屏蔽结构的调整,载流结构的更换以及树脂浸渍纸材料的改性,研究了四种套管设计的效果。结果表明,由于尺寸限制,仅调整电容器的屏蔽是不可行的。通过减少热量的积聚,采用单管结构并增加树脂浸渍的纸材料的热导率可以在一定程度上降低电场畸变。与其他三种方法不同,分层控制材料电阻可有效地平衡内部和外部电场。仿真结果证明了这些方法改善套管中电热耦合场分布的可行性。

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