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Hybrid method on signal de-noising and representation for online partial discharge monitoring of power transformers at substations

机译:变电站在线局部放电监测的信号降噪与表示混合方法

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摘要

To ensure reliable operations of power transformers, online condition monitoring needs to be performed. However, extensive noise can be coupled into measured signals and cause ambiguities in evaluating transformers’ conditions. This study proposes a hybrid method, which combines pre-whitening and blind equalisation for de-noising the signals obtained from online partial discharge (PD) measurements of transformers. A measured signal is first gone through a pre-whitening process for initial noise reduction and then processed by blind equalisation. Finally, an equalised signal that can reveal PD source in a transformer is converted to a kurtogram for an accurate PD pattern representation. The proposed method has been applied to signals obtained from laboratory experiments and online measurements of transformers at substations. Results show that the method can effectively de-noise PD signals contaminated by severe noise and consistently represent PD patterns induced by different PD sources.
机译:为了确保电力变压器的可靠运行,需要执行在线状态监视。但是,大量噪声会耦合到测量信号中,并在评估变压器的状况时造成歧义。这项研究提出了一种混合方法,该方法结合了预白化和盲均衡,以对从变压器在线局部放电(PD)测量获得的信号进行去噪。被测信号首先经过预白化处理以降低初始噪声,然后通过盲均衡进行处理。最终,可以揭示变压器中PD源的均衡信号被转换为峰度图,以精确表示PD模式。所提出的方法已经应用于从实验室实验和变电站变压器在线测量获得的信号。结果表明,该方法可以有效去除严重噪声污染的局部放电信号,并始终代表由不同局部放电源引起的局部放电模式。

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