Applied Mathematics and Nonlinear Sciences
Journal license

Journal

Applied Mathematics and Nonlinear Sciences


Volume
& Issue

Volume 9, Issue 1


Published
on

May 15, 2024


Pages


DOI

Article

Design of non-electrical protection device for 300Mvar-class large-scale phase-regulating units


Authors

Jinjun Huang Affiliation:
State Grid Electric Power Research Institute Co., Ltd.
, Peng Wang Affiliation:
State Grid Inner Mongolia East Electric Power Co., Ltd. Inner Mongolia Ultra High Voltage Branch, Xilinhot, Inner Mongolia, 026000, China.
, Zhiyuan Liu Affiliation:
State Grid Inner Mongolia East Electric Power Co., Ltd, Hohhot, Inner Mongolia, 010000, China.
and Jinsi Han Affiliation:
State Grid Electric Power Research Institute Co., Ltd.


Abstract

This study investigates the role of non-electrical protective devices in forecasting hazards for large 300Mvar class phase shifter units, which face overvoltage and overcurrent stresses under severe faults, distorting their internal magnetic fields. Utilizing migration learning, the research extracts target and auxiliary data to train autoencoders with sparse constraints. A deep learning-based DSAE-BP online recognition network is constructed using a backpropagation neural network. This network predicts potential safety hazards in large-scale phase-regulating units by analyzing data signals from connected sensors. Experimental results show delay time errors of less than 20ms and ripple rates between 1.40%-1.65% across varied current and voltage conditions, demonstrating the device’s accuracy and stability in fault prediction.


Keywords

Autoencoder, Sparse constraints, DSAE-BP network, Non-power protection, 97P10


Citation

Huang, J., Wang, P., Liu, Z., & Han, J. (2024). Design of non-electrical protection device for 300Mvar-class large-scale phase-regulating units. Applied Mathematics and Nonlinear Sciences, 9(1). https://doi.org/10.2478/amns-2024-1106

Published by: Engineering Journals

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