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首页> 外文期刊>Dielectrics and Electrical Insulation, IEEE Transactions on >Insulation breakdown characteristics of UHV-class gas insulated switchgear for lightning impulse withstand voltage test waveform - K-factor value and front time related characteristics
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Insulation breakdown characteristics of UHV-class gas insulated switchgear for lightning impulse withstand voltage test waveform - K-factor value and front time related characteristics

机译:雷电冲击耐受电压测试波形的特高压气体绝缘开关设备的绝缘击穿特性-K因子值和与前置时间有关的特性

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摘要

The lightning impulse withstand voltage test waveform for electric power equipment is specified in IEC 60060-1 "High-voltage test techniques" as revised in 2010. At present, test standards for UHV-class equipment are under study. Increasing equipment capacity and the digitization of measuring equipment are mentioned as these backgrounds. Withstand voltage test by the standard waveform specified in the previous standard had been difficult (it eventually becomes an overshoot waveform) with increasing equipment capacitance. In response, an evaluation method using the kfactor function (test voltage function) was introduced, whereby the overshoot waveform was converted to the test voltage waveform. To date, concerning these kfactor values, measurement results based on experiments have been reported, but most were from small-scale insulation models with breakdown voltage levels mainly around 100 kV. The present study reports the experimental results of the insulation breakdown characteristics for the lightning impulse withstand voltage test waveform in the largest SF6 gas insulation model possible assuming actual UHV-class gas insulated switchgear. Breakdown voltage and breakdown time were measured with the superimposed oscillation frequency, overshoot rate, and front time as parameters. Following evaluation of the k-factor value based on these experimental results, the k-factor value with the overshoot rate of 10% was almost identical to that of the existing k-factor function. Consequently, evaluation using the existing k-factor function is considered appropriate. Subsequently, the existing k-factor function is most likely to be effective also for UHV-class equipment. In addition, it emerged that changes in the insulation breakdown characteristics due to the extension of the front time were small. It was considered that extending the front time, rather than allowing an excessive overshoot rate, would enable proper verification of the insulation performance as part of sta-n-nndard assuming UHV-class equipment.
机译:电力设备的雷电冲击耐受电压测试波形在2010年修订的IEC 60060-1“高压测试技术”中进行了规定。目前,正在研究UHV级设备的测试标准。作为这些背景,提到了增加设备容量和测量设备的数字化。随着设备电容的增加,很难通过先前标准中指定的标准波形进行耐压测试(最终成为过冲波形)。作为响应,引入了使用kfactor函数(测试电压函数)的评估方法,从而将过冲波形转换为测试电压波形。迄今为止,关于这些kfactor值,已经报道了基于实验的测量结果,但大多数来自击穿电压水平主要在100 kV附近的小型绝缘模型。本研究报告了在最大的SF6气体绝缘模型中,假设实际的特高压类气体绝缘开关设备,雷电冲击耐受电压测试波形的绝缘击穿特性的实验结果。以叠加的振荡频率,过冲率和前沿时间为参数,测量击穿电压和击穿时间。根据这些实验结果评估k因子值后,过冲率为10%的k因子值几乎与现有k因子函数的k因子值相同。因此,使用现有k因子函数进行评估被认为是适当的。随后,现有的k因子函数最有可能对特高压级设备也有效。另外,发现由于前时间的延长而引起的绝缘击穿特性的变化很小。人们认为,延长前期时间(而不是允许过高的过冲率)将使绝缘性能得到适当的验证,这可以作为假定为UHV级设备的标准。

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