離散ウェーブレット変換を用いた電力ケーブル線路における部分放電の自動検出法

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タイトル別名
  • Auto-Detection of Partial Discharges in Power Cables by Descrete Wavelet Transform
  • 離散ウェーヴレット変換を用いた電力ケーブル線路における部分放電の自動検出法
  • リサン ウェーヴレット ヘンカン オ モチイタ デンリョク ケーブル センロ ニ オケル ブブン ホウデン ノ ジドウ ケンシュツホウ

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抄録

One of the serious problems that may happen in power XLPE cables is destruction of insulator. The best and conventional way to prevent such a crucial accident is generally supposed to ascertain partial corona discharges occurring at small void in organic insulator. However, there are some difficulties to detect those partial discharges because of existence of external noises in detected data, whose patterns are hardly identified at a glance. By the reason of the problem, there have been a number of researches on the way of development to accomplish detecting partial discharges by employing neural network (NN) system, which is widely known as the system for pattern recognition.<br>We have been developing the NN system of the auto-detection for partial discharges, which we actually input numerical data of waveform itself into and obtained appropriate performance from. In this paper, we employed Descrete Wavelet Transform (DWT) to acquire more detailed transformed data in order to put them into the NN system. Employing DWT, we became able to express the waveform data in time-frequency space, and achieved effective detectiton of partial discharges by NN system. We present here the results using DWT analysis for partial discharges and noise signals which we obtained actually. Moreover, we present results out of the NN system which were dealt with those transformed data.

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