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Insulation breakdown characteristics of UHV-class oil-immersed transformer for lightning impulse withstand voltage test waveform - K-factor value and front time related characteristics

机译:雷电冲击耐压测试波形的特高压油浸式变压器的绝缘击穿特性-K系数值和与前置时间有关的特性

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The lightning impulse withstand voltage test waveform for electrical power equipment is specified in IEC 60060-1 ?????????High-voltage test techniques?????????. Now that ultrahigh voltage-class (UHV-class) electrical power equipment is being introduced and increasingly used, the electrical capacitance of equipment to be tested has increased, which has eventually hampered the test using the waveform that conforms to the previous standard. To address this issue, the IEC revised the IEC 60060-1 standard in 2010 and now is studying the standard for UHV-class electrical equipment. In this revision, an evaluation method using the k-factor function (test voltage function) was introduced, whereby the overshoot waveform was converted to a test voltage waveform. To date, concerning these k-factor values, measurement results based on experiments have been reported, but most were for small-scale insulation models with breakdown voltage levels mainly around 100 kV. This paper reports the experimental result of insulation breakdown characteristics for lightning impulse withstand voltage test waveforms in the model with the largest oil gap possible assuming an actual UHV-class oil-immersed transformer. Breakdown voltages and breakdown times were measured with the superimposed oscillation frequency, overshoot rate and front time as parameters. Consequently, it was indicated that, as the overshoot rate increased, the 50% breakdown voltage was inclined to increase. Subsequently, the evaluation using the k-factor function is considered to be useful for UHV-class oil immersed transformer. The result of evaluation of the k-factor value based on the experimental result was almost identical to the result of the European Project, which is the basic data of the existing k-factor function. As a result, it emerged that the existing k-factor function itself was most likely to be applicable to UHV-class oil-immersed transformers. Furthermore, since the extension of the front time up to about 3.-n-n6 ??????s caused only a small change in insulation breakdown characteristics, the extension of the front time up to about 3.6 ;C;s might possibly be allowed in the standard that assumes a UHV-class transformer.
机译:电力设备的雷电冲击耐受电压测试波形在IEC 60060-1中进行了规定。现在,超高压级(UHV级)电力设备已被引入并得到越来越多的使用,待测设备的电容已经增加,这最终阻碍了使用符合先前标准的波形进行测试。为了解决这个问题,IEC在2010年修订了IEC 60060-1标准,现在正在研究超高压级电气设备的标准。在该修订版中,引入了使用k因子函数(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k因子值,已经报告了基于实验的测量结果,但是大多数是针对击穿电压水平主要在100 kV左右的小型绝缘模型。本文报告了在油压间隙最大的模型中,假设有实际的UHV级油浸式变压器,模型的雷击冲击耐压测试波形的绝缘击穿特性的实验结果。击穿电压和击穿时间以叠加的振荡频率,过冲率和前沿时间为参数进行测量。结果表明,随着过冲率的增加,50%的击穿电压倾向于增加。随后,使用k因子函数的评估被认为对特高压级油浸式变压器很有用。根据实验结果评估k因子值的结果几乎与欧洲项目的结果相同,这是现有k因子函数的基本数据。结果表明,现有的k因子函数本身最有可能适用于特高压级油浸式变压器。此外,由于将前沿时间延长到大约3.-n-n6 s只会引起绝缘击穿特性的很小变化,所以将前沿时间延长到大约3.6; C; s可能假设使用特高压变压器的标准中可能允许使用。

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