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Parameter Optimization of Nonlinear Conductivity Material for ±500 kV GIL Spacer

机译:非线性电导率材料参数优化±500 kV吉尔间隔物

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Regulating the electric field distribution is one of the critical problems for the development of HVDC gas insulated transmission lines (GIL). In this study, the surface nonlinear conductivity (SNC) spacer was applied to relax the electric field distortions caused by a metal particle or a polarity reversal voltage in a ±500 kV DC-GIL. Results indicated impressive behaviors of the SNC spacer in regulating surface charge and electric field distributions. To get better performances, the regulation effect, the loss property and the transient response of the SNC spacer were explored by varying the Ohmic surface conductivity and the nonlinear coefficient. The electric field utilization factor of the SNC spacer has a saturation region, but the surface loss keeps growing while increasing the nonlinear parameters. The time constant was defined to evaluate the transient response of spacers, and a lower time constant leads to a lower over-shoot of electric field under polarity reversal voltages. Finally, the parameter optimization of the SNC spacer was achieved by drawing a parameter map after fixing relevant indexes.
机译:调节电场分布是HVDC气体绝缘传输线(GIL)开发的关键问题之一。在该研究中,施加表面非线性导电性(SNC)间隔物,以松弛由金属颗粒或±500kV DC-GIL中的金属颗粒或极性反转电压引起的电场失真。结果表示SNC垫片在调节表面电荷和电场分布中的令人印象深刻的行为。为了获得更好的性能,通过改变欧姆表面电导率和非线性系数来探讨调节效果,损耗性能和SNC间隔物的瞬态响应。 SNC间隔物的电场利用因子具有饱和区域,但表面损失在增加非线性参数的同时保持生长。定义时间常数以评估间隔物的瞬态响应,并且较低时间恒定导致极性反转电压下的电场较低的电场。最后,通过在修复相关索引之后绘制参数映射来实现SNC间隔的参数优化。

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