Carbonized surface tracking on pressboard cylinder of oil filled transformer under main insulation faults

Muzi Li, Long Li, Hua Yin, W. Lu, Jianan Weng
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Abstract

In recently years, main insulation faults such as short-circuit of primary winding to secondary winding, winding to bushing and winding to ground is becoming main sources for transformer explosion. During the short-circuit issues, creeping discharge along the solid-liquid interface tend to cause tree-like carbonized white marks and black marks to spread on pressboard and lead to flashover. These surface tracking phenomena are good indicators for understanding the development mechanisms of transformer insulation failures. However, up to now most of the research on surface tracking of carbonized marks is carried out in minimized test cells, e.g., need-plane electrode configuration immersed in oil/pressboard samples, the precise modelling of surface tracking along oil/pressboard interface in real transformer is still a technical challenge. In this paper, a single-phase transformer model is manufactured, with internal insulation structure imitating the practical case of a 500kV three-phase split type transformer. AC power source is injected into the high-voltage bushing of the transformer model with applied voltage up to 60kV, whereas a divergent gap is artificially placed surrounding the pressboard cylinder to create main insulation failures. Oscilloscope was used to monitor the voltage level of simulated faults, and microscope was used to observe the carbonation traces on the surface of the pressboard after the simulation experiment. The experimental results show that the surface discharge fault of the pressboard will damage the structure of the pressboard, and the damage severity increases with the increase of fault voltage level
主要绝缘故障下充油变压器压板缸表面碳化痕迹
近年来,一次绕组对二次绕组短路、绕组对套管短路、绕组对地短路等主要绝缘故障已成为变压器爆炸的主要来源。在短路过程中,沿固液界面的蠕变放电容易在电路板上形成树状的炭化白痕和黑痕,引起闪络。这些表面跟踪现象是了解变压器绝缘失效发展机制的良好指标。然而,目前对碳化痕迹表面跟踪的研究大多是在最小的测试单元中进行的,例如,浸在油/压板样品中的需面电极配置,在实际变压器中沿油/压板界面的表面跟踪的精确建模仍然是一个技术挑战。本文制作了一台单相变压器模型,其内部绝缘结构模仿500kV三相分体式变压器的实际情况。将交流电源注入到变压器模型的高压套管中,施加电压高达60kV,而在压板气缸周围人为地放置一个分散的间隙,以造成主绝缘故障。用示波器监测模拟故障的电压水平,用显微镜观察模拟实验后压板表面的碳化痕迹。实验结果表明,板料表面放电故障会对板料结构造成损伤,且损伤程度随故障电压水平的增加而增大
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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