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Surface coating affecting charge distribution and flashover voltage of cone-type insulator under DC stress

机译:DC应力下影响锥型绝缘体的电荷分布和闪络电压的表面涂层

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In order to scale down the dimensions of gas insulated line (GIL) insulators and to improve their reliability at ultra high voltage (UHV), considerable research has been conducted to raise the flashover voltage of the insulators. Usually, a non-uniform electric field distribution is an important factor triggering flashovers. Under AC and impulse voltages, the application of functionally graded materials (FGM) with spatial distribution of dielectric permittivity (e-FGM) has been shown to be an effective solution. But at DC, the electric field distribution depends not only on the conductivity of the dielectrics but also the charge distribution on the surface. Based on the cone-type insulator, this paper reports on the surface charge accumulation and DC flashover of epoxy (EP)/graphene (GR) coated insulators in air. The EP/GR coated insulators with different filler amounts were prepared to test their surface charge accumulation and flashover characteristics. The results show that the uniformly distributed homopolar surface charge is helpful in reducing the peak electric field thereby raising the flashover voltage. The 0.1% EP/GR composite has the slowest surface potential decay process. Accordingly, the 0.1% coated insulator has the highest flashover voltage among the other EP/GR coated insulators and uncoated insulator. The bipolar surface charge regions caused by wire-type metal particles distort the electric field distribution. Flashovers of the 0.1% coated insulator occurs at lower voltage than the uncoated insulator when a wire-type particle attaches to the surface.
机译:为了缩小气体绝缘线(GIL)绝缘体的尺寸并在超高压(UHV)上提高其可靠性,已经进行了相当大的研究以提高绝缘体的闪络电压。通常,非均匀的电场分布是触发闪络的重要因素。在AC和脉冲电压下,具有介电介电常数(E-FGM)的功能梯度材料(FGM)的应用已被证明是一种有效的解决方案。但在DC,电场分布不仅取决于电介质的电导率,而且取决于表面上的电荷分布。基于锥型绝缘体,本文报告了空气中环氧(EP)/石墨烯(GR)涂覆绝缘体的表面电荷积累和直流闪络。制备具有不同填料量的EP / GR涂覆的绝缘体以测试它们的表面电荷积聚和闪络特性。结果表明,均匀分布的均线表面电荷有助于减少峰值电场,从而提高闪络电压。 0.1%EP / GR复合材料具有最慢的表面电位衰减过程。因此,0.1%涂覆的绝缘体具有最高的闪络电压在另一个EP / GR涂层绝缘体和未涂覆的绝缘体之间。由线型金属颗粒引起的双极表面电荷区域扭曲了电场分布。 0.1%涂覆绝缘体的闪络发生在线型颗粒附着到表面上时,在低电压下发生在未涂覆的绝缘体。

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