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A wavelet transform technique for de-noising partial discharge signals

机译:用于局部放电信号消噪的小波变换技术

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Partial discharge (PD) diagnosis is essential to identify the nature of insulation defects causing discharge. The problem of PD signal recognition has been approached in a number of ways. Most of the approaches are based on laboratory experiments or on signals acquired during off-line tests of industrial apparatus. On-line testing is vastly preferable as the equipment can remain in service, and the operators can monitor the insulation condition continuously. Interferences from noise sources have been a persistent problem, which have increased with the advent of solid-state power switching electronics. Use of wavelet transform technique offers many advantages over conventional digital filters and is ideally suited to process non- stationary signals (transients) often encountered in high voltage testing and measurements. In this paper, an empirical wavelet- based method is proposed to recover PD pulses mixed with excessive noise/interference. A critical assessment of the proposed method is carried out by processing simulated PD signals along with noise signals using MAT LAB software.
机译:诊断局部放电(PD)对于识别导致放电的绝缘缺陷的性质至关重要。 PD信号识别的问题已经以多种方式解决。大多数方法基于实验室实验或工业设备离线测试期间获得的信号。在线测试是非常可取的,因为设备可以保持运行状态,并且操作员可以连续监控绝缘状况。噪声源的干扰一直是一个长期存在的问题,随着固态功率开关电子器件的出现,噪声问题日益严重。小波变换技术的使用提供了优于常规数字滤波器的许多优点,并且非常适合处理高压测试和测量中经常遇到的非平稳信号(瞬态)。在本文中,提出了一种基于经验小波的方法来恢复混合了过多噪声/干扰的局放脉冲。通过使用MAT LAB软件处理模拟的PD信号以及噪声信号,可以对所提出的方法进行严格的评估。

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