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Test Study on Corona Onset Voltage of UHV Transmission Lines Based on UV Detection

机译:基于紫外线检测的特高压输电线路电晕起始电压的试验研究

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Corona discharge is being detected by UV imaging detection technology at home and abroad in recent years. This technology is used in the corona tests of bundled conductors in this paper. In order to further research the corona characteristic, optimize geometry parameters and diameter of sub-conductor, and increase corona onset voltage of transmission lines, corona tests of three mode conductors which are placed inside the outdoor corona cage are conducted. Corona cage could be used to simulate the corona activities on transmission lines under a low voltage and different conditions in an effective and economical way. Photon which was created by UV light as a result of corona discharge on conductors is detected by the UV detection apparatus. The photon number within unit interval, namely photon counting rate is adopted as the parameter of quantifying the intensity of corona discharge. According to the apparent change of photon number, corona onset voltage can be judged. All tests are conducted under almost same atmosphere condition. Using the method, corona onset voltage is acquired. The results indicate that the tests have a good repeatability, in other words, repeat same test twice can acquires same result. The corona onset voltage can be acquired exactly from the curve of applied voltage vs. photon counting rate. Therefore UV detection apparatus can not only used to find discharge point exactly, but also applied on corona discharge research and live detection for power equipments. The method using in this paper is proved that is a new available method.
机译:近年来,国内外的UV成像检测技术正在检测电晕放电。本文将这种技术用于捆绑导体的电晕测试中。为了进一步研究电晕特性,优化分导体的几何参数和直径,并增加传输线的电晕起始电压,对放置在室外电晕笼内的三种模式导体进行了电晕测试。电晕笼可以用来模拟输电线路在低电压和不同条件下的电晕活动,并且经济有效。通过紫外线检测设备检测到由于导体上的电晕放电而由紫外线产生的光子。采用单位间隔内的光子数,即光子计数率作为量化电晕放电强度的参数。根据光子数的表观变化,可以判断电晕起始电压。所有测试均在几乎相同的大气条件下进行。使用该方法,获得电晕起始电压。结果表明测试具有良好的重复性,换句话说,重复两次相同的测试可以获得相同的结果。电晕起始电压可以准确地从外加电压与光子计数率的关系曲线中获得。因此,紫外检测仪不仅可以精确地发现放电点,而且还可以应用于电晕放电研究和电力设备的带电检测。证明了本文使用的方法是一种新的可用方法。

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