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Charge Accumulation on Slightly Conductive Barrier Systems and Its Effect on Breakdown Voltage in an Air Insulated Rod Plane Arrangement

机译:略微导电屏障系统上的电荷累积及其对空气绝缘杆平面布置中的击穿电压的影响

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The barrier effect has been known since the 1930's. It is of great importance in the field of high voltage engineering as the breakdown voltage of an electrode arrangement can be increased significantly when dielectric barriers are applied. Nevertheless, an exact and general valid physical model explaining the barrier effect in gaseous, liquid and solid insulation systems is still not known. For gaseous insulation systems, the Marx-Roser model is widely accepted for explaining the barrier effect. The Marx-Roser model explains the barrier effect by a redistribution of the electric field in the gap. This redistribution is due to the space-charge field in front the tip but also due to the surface charge field formed on the barrier. This leads to a higher breakdown voltage of the system. In a recent publication of the authors, it was shown that the surface resistance of the barrier has a huge impact of the breakdown performance of the barrier arrangement. The breakdown voltage of the system decreased when the surface resistance of the barrier was decreased over a value of around 10~7 Ω. To investigate this effect, the surface potential due to accumulated surface charges on the barrier surface was measured for three different values of barrier surface resistance. It was shown in the experiments that at lower values of surface resistance, less surface charges are accumulated at the barrier surface. This leads to a decrease of the field reduction effect between high voltage electrode and barrier surface and might result in lower breakdown values of the system.
机译:自1930年代以来已知屏障效果。当施加介电屏障时,电极布置的击穿电压可以显着增加,在高压工程领域非常重要。然而,解释气体,液体和固体绝缘系统中的屏障效果的精确和一般有效的物理模型仍然不知道。对于气体绝缘系统,Marx-Roser模型被广泛接受用于解释阻挡效果。 Marx-Roser模型通过间隙中的电场的重新分布来解释阻挡效果。这种重新分布是由于前端的空间电量场,而且由于在屏障上形成的表面电荷场。这导致系统的较高击穿电压。在最近的作者出版物中,表明屏障的表面电阻具有屏障布置的击穿性能的巨大影响。当屏障的表面电阻降低超过10〜7Ω时,系统的击穿电压降低。为了研究这种效果,测量由于阻挡表面上的累积表面电荷引起的表面电位,用于三种不同的阻挡表面电阻值。在实验中示出,在较低的表面电阻值下,较少的表面电荷在阻挡表面处积聚。这导致高压电极和屏障表面之间的场降低效应的降低,并且可能导致系统的较低击穿值。

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