直流GIL绝缘子纳米涂层气固界面电荷耗散特性研究

Xiaoru Ni, Shuai Chang, Xin Ge, Tao Huang, Chenyu Hao, Lei Zhang
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摘要

绝缘子的气固界面是直流GIL绝缘系统的薄弱环节,绝缘子表面容易发生电荷积聚。本文制备了不同纳米掺杂含量的SiC/环氧复合涂层,并将其涂覆在绝缘子表面。结果表明:当纳米填料含量较低时,其在环氧树脂中的分散较均匀;复合涂层材料的热稳定性显著提高。随着纳米粒子含量的增加,绝缘子的表面电荷耗散增大;但在一定值之后,表面电荷耗散率会下降,甚至低于纯环氧树脂的耗散率。当纳米sic含量为6%时,样品的表面电荷耗散速度最高,电荷耗散率最高,最终耗散约为30% ~ 35%。分析表明,当纳米颗粒含量较低时,复合材料中引入了一些浅阱,从而降低了浅阱的能级,从而提高了电荷的耗散率。但当纳米颗粒含量过高时,由于纳米颗粒团聚等因素,会改变浅阱的分布。但电荷耗散受到抑制。根据纳米复合涂层的理化性能和电学性能测试结果,可以选择合适的纳米涂层,这对于保证直流GIL安全可靠运行具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study on the Charge Dissipation Characteristics of the Gas-Solid Interface of the Nano-Coating of DC GIL Insulators
The gas-solid interface of the insulator is the weak link of the DC GIL insulation system, and the surface of the insulator is prone to charge accumulation. In this paper, SiC/Epoxy composite coatings with different nano-doping content were prepared and applied to the surface of the insulator. The results showed that when the content of nanofillers is low, the dispersion in epoxy resin is more uniform; the thermal stability of composite coating materials is significantly improved. As the content of nanoparticles increases, the surface charge dissipation of the insulator increases; but after a certain value, the surface charge dissipation rate will decrease, even lower than the dissipation rate of pure epoxy resin. When the content of nano-SiC is 6%, the surface charge dissipation speed of the sample is the highest, the charge dissipation rate is the highest, and the final dissipation is about 30% ~ 35%. Analysis suggests that when the content of nanoparticles is low, some shallow traps are introduced into the composite material, which reduces the energy level of the shallow traps, thereby increasing the dissipation rate of the charge. But when the content of nanoparticles is too high, due to factors such as agglomeration of nanoparticles, the distribution of shallow traps is changed.But the charge dissipation is inhibited.Based on the test results of the physical and chemical properties and electrical properties of the nanocomposite coating, a suitable nano-coating can be selected, which is of great significance for ensuring the safe and reliable operation of DC GIL.
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