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Ingegneria Sismica

Ingegneria Sismica

An improved graph convolutional neural network model is used for fault detection of the main circulation pump of the valve cooling system of the converter station

Author(s): Yang Li1, Zhiqiang Liu1, Chunhai Guo1, Jing Gan2, Yingying Lv3, Qiang Wang4
1Ehv Transmission Companies Dali Office of China Southern Power Grid, Dali 671000, Yunnan, China
2School of Information, Yunnan University, Kunming 650091, China
3School of Information Engineering and Automation, Kunming University of Science and Technology, Kunming 650500, Chian
4Henan Jingrui Cooling Technology Co., LTD, Xuchang 461000, Henan, Chian
Li, Yang. et al “An improved graph convolutional neural network model is used for fault detection of the main circulation pump of the valve cooling system of the converter station.” Ingegneria Sismica Volume 43 Issue 2: 1-23, doi:10.65102/is20261028.

Abstract

In the valve cooling system of converter station, the main circulation pump monitoring method based on fixed threshold is easy to ignore the coupling changes between pressure, flow, motor current, vibration and temperature signals. This paper proposes an improved graph Convolutional neural Network (IGCN) for pump fault detection under cooling load changes. 38640 synchronous operation records were collected from the two converter stations, covering normal operation, flow attenuation, pressure fluctuation, bearing vibration, seal leakage, and motor current abnormalities. Each sensor channel is represented as a graph node, and adaptive edge weights are calculated based on operational correlation, device connectivity, and fault response delay. The temporal residual aggregation was embedded into the graph convolution propagation process to retain the short-term fluctuation pattern. The dataset is divided into training, validation and test sets at 8:1:1. Experimental results show that IGCN achieves 96.1% accuracy, 94.8% recall rate and 95.6% F1 value, and the average inference delay is 38 ms, which supports stable online fault detection applications of valval-cooled pump.

Keywords
Improved graph convolutional neural network; Converter station valve cooling system; Main circulation pump; Fault detection

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