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Publishing Language: Chinese | Open Access

Influencing factors and suppression strategies of straight waveguide phase modulator error in fiber optical current transformers

Shaoyi XU1Lu YIN1Xing DENG1Fubin PANG2Chengtao WANG3Aiguo SONG4
School of Mechanical and Electrical Engineering, China University of Mining and Technology, Xuzhou 221116, China
State Grid Jiangsu Electric Power Co., Ltd. Research Institute, Nanjing 211103, China
School of Electrical and Control Engineering, Xuzhou University of Technology, Xuzhou 221018, China
School of Instrument Science and Engineering, Southeast University, Nanjing 210096, China
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Abstract

The performance of a straight waveguide phase modulator is influenced by insertion loss and half-wave voltage, which in turn can lead to the degradation of fiber optical current transformers (FOCTs). Therefore, elucidating the impact patterns of insertion loss and half-wave voltage on the system error of FOCTs is crucial for further enhancing the performance of phase modulators. Based on the analysis of the working principle of the direct-coupled waveguide phase modulator, the theoretical models for both insertion loss and half-wave voltage of the modulator are established. Experiments are conducted to observe the variations of insertion loss and half-wave voltage under different environmental conditions, and to ascertain the influence of these variations on the system error of FOCTs. A long short-term memory neural network is utilized for error compensation of insertion loss and half-wave voltage in the direct-coupled waveguide phase modulator. The results show that after error compensation, the output error of the system under variable temperature conditions is within 0.05% and meets the accuracy requirements of the 0.2-class current sensor.

CLC number: TM452.94 Document code: A

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Electric Power Engineering Technology
Pages 129-138

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Cite this article:
XU S, YIN L, DENG X, et al. Influencing factors and suppression strategies of straight waveguide phase modulator error in fiber optical current transformers. Electric Power Engineering Technology, 2026, 45(7): 129-138. https://doi.org/10.12158/j.2096-3203.2026.07.012

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Received: 10 October 2025
Revised: 29 December 2025
Published: 30 July 2026
© After publication of the article, the authors shall own the right of signature. 2026.

The authors can use or share the published article under the Attribution-Non Commercial 4.0 International (CC BY-NC 4.0) license.