Design of an Ultra-High-Frequency Through-Core Current Transformer for Cable Partial Discharge Detection
Abstract
1. Introduction
2. Current Sensor Model Establishment
3. Research on the Influence of Hardware Parameters on Sensor Performance
3.1. Magnetic Core Material
3.2. Influence of Structural Parameters on Performance
4. Optimal Sensor Parameter Design
4.1. Multi-Objective Particle Swarm Optimization Algorithm
4.2. Model Establishment
4.3. Analysis of Optimization Results
5. Sensor Performance Evaluation
5.1. Frequency Response Testing
5.2. Partial Discharge Signal Testing
6. Conclusions
- (1)
- The number of turns exhibits a negative correlation with sensitivity, showing a decreasing trend as turns increase. In contrast, the sampling resistor demonstrates a positive correlation with sensitivity. Other hardware parameters do not affect sensor sensitivity.
- (2)
- The coil outer radius and sampling resistor are negatively correlated with bandwidth, which decreases as they increase. Conversely, coil thickness, number of turns, and inner radius show positive correlations with bandwidth. Wire diameter does not influence sensor bandwidth.
- (3)
- The designed UHF through-core current sensor features a simple structure, with frequency response tests confirming its compatibility with both high bandwidth and sensitivity. Partial discharge signal tests verify its effective coupling capability for cable PD signals across low, medium, and high-frequency ranges.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Wei, B. Study on Partial Discharge On-Line Monitoring and Fault Characteristics of 110 kV High Voltage XLPE Cable Accessories. Master’s Thesis, North China Electric Power University, Beijing, China, 2004. [Google Scholar]
- Ma, G.M.; Li, C.R.; Chen, X.W.; Jiang, J.; Ge, Z.D.; Chang, W.Z. Numerical sensor design for partial discharge detection on power cable joint. IEEE Trans. Dielectr. Electr. Insul. 2015, 22, 2311–2319. [Google Scholar] [CrossRef]
- Zhou, X.H.; Zeng, P.; Liu, Z.G.; Chen, Y.; Cheng, A.; Zhang, Z.Q.; Cai, X.J. Analysis of electromagnetic wave propagation characteristics of partial discharge in cable intermediate joint and optimization design of sensor. Hunan Electr. Power 2024, 44, 81–86. [Google Scholar]
- Hung, Y.C.; Tang, K.W.; Li, S.S. Mode Localized Piezoelectric Resonator Design and Implementation for Electrical Current Sensing. In Proceedings of the 2024 IEEE SENSORS, Kobe, Japan, 20–23 October 2024; pp. 1–4. [Google Scholar]
- Liu, S.; Chen, P.; Luo, J.; Chen, Y.; Liu, B.; Xiao, H.; Yan, W.; Ding, W.; Bai, Z.; He, J.; et al. Nano-Optomechanical Resonators Based Graphene/Au Membrane for Current Sensing. J. Light. Technol. 2022, 40, 7200–7207. [Google Scholar] [CrossRef]
- Tao, P. Local Leakage Location Method for High-Voltage Insulating Equipment Based on Optical Fiber Sensors. Electr. Drive 2023, 53, 91–96. [Google Scholar]
- Zhuang, H.; Qi, Y.J.; Li, B.; Liu, Y.W. Design of Partial Discharge Detection System Based on sic-based Photoelectric Sensor. Semicond. Optoelectron. 2018, 39, 712–715+721. [Google Scholar]
- State Grid Corporation of China. Technical Specification for Live Detection Instruments of Power Equipment—Part 5: Technical Specification for High-Frequency Partial Discharge Live Detector: Q/GDW 11304.5—2015; China Electric Power Press: Beijing, China, 2015. [Google Scholar]
- Tang, Z.G.; Jiang, T.T.; Yu, Z.Q. Research on high frequency current method for detecting partial discharge of capacitors. Electr. Mach. Control 2019, 23, 18–25+33. [Google Scholar]
- Tang, Z.G.; Jiang, T.T.; Zhang, L.G. Study on sensitivity of high frequency current method for detecting capacitor partial discharge. High Volt. Appar. 2018, 54, 9–15. [Google Scholar]
- Li, H.N. Partial Discharge Detection Method of High Voltage Cable Joint. Master’s Thesis, North China Electric Power University, Beijing, China, 2011. [Google Scholar]
- Jiang, J.B.; Chen, G.F.; Luo, Z.; Fang, C.H.; Zou, Y.A.; Zhao, L. Research and design of Roche coil for partial discharge signal measurement. High Volt. Appar. 2025, 61, 63–71. [Google Scholar]
- Fu, S.; Deng, E.; Peng, C.; Zhang, G.; Zhao, Z.; Cui, X. Method of turns arrangement of noncircular Rogowski coil with rectangular section. IEEE Trans. Instrum. Meas. 2020, 70, 9000310. [Google Scholar] [CrossRef]
- Huang, Y.G. Experimental study on non-ideal working condition of Roche coil. Electron. Meas. Technol. 2018, 41, 38–41. [Google Scholar]
- Gong, J.; Yang, D.; Zhou, L.X. Improvement of partial discharge pulse current sensor in transformer. J. Electr. Power Sci. Technol. 2007, 4, 68–71. [Google Scholar]
- Giussani, R.; Zachariades, C.; Foxall, M.; Renforth, L.; Seltzer-Grant, M. A novel electrical sensor for combined online measurement of partial discharge (OLPD) and power quality (PQ). In Proceedings of the International Symposium on High Voltage Engineering, Pilsen, Czech Republic, 23–28 August 2015. [Google Scholar]
- Xu, Y.; Gu, X.; Liu, B.; Hui, B.; Ren, Z.; Meng, S. Special requirements of high frequency current transformers in the on-line detection of partial discharges in power cables. IEEE Electr. Insul. Mag. 2016, 32, 8–19. [Google Scholar] [CrossRef]
- Zhu, J.; Zhang, Q.; Jia, J.; Tao, F.; Yang, L.; Yang, L. Design of a Rogowski coil with a magnetic core used for measurements of nanosecond current pulses. Plasma Sci. Technol. 2006, 8, 457–460. [Google Scholar]
- Gong, H. Modeling Method, and Development Technology of High Frequency Current Sensor Based on Electromagnetic Induction Principle. Ph.D. Thesis, Huazhong University of Science and Technology, Wuhan, China, 2020. [Google Scholar]
- Cooper, J. On the high-frequency response of a Rogowski coil. J. Nucl. Energy Part C Plasma Phys. Accel. Thermonucl. Res. 2002, 5, 285. [Google Scholar] [CrossRef]
- Naito, K.; Mizuno, Y. A study on probabilistic assessment of contamination flashover of high voltage insulator. IEEE Trans. Power Deliv. 1995, 10, 1378–1384. [Google Scholar] [CrossRef]
- Fang, Z.; Zhao, Z.Y.; Qiu, Y.C.; Li, S. Analysis of high frequency characteristics of Rogowski coil. High Volt. Eng. 2002, 8, 17–18+21. [Google Scholar]
- Wang, L. Development of High Frequency Current Sensor Based on Ni-Zn Ferrite Soft Magnetic Material. Master’s Thesis, North China Electric Power University, Beijing, China, 2018. [Google Scholar]
- Liu, Y.P.; He, S.J.; Bao, D.X.; Ren, X.Y. Development trend of soft magnetic materials. J. Magn. Mater. Devices 2003, 34, 26–29. [Google Scholar]
- Deng, J.Y.; Wang, X.H.; Nie, Y.X. Design of high frequency current sensor for on-line monitoring of cable joints. Power Electron. Technol. 2023, 57, 33–36. [Google Scholar]
- Zhang, S.F.; Jia, D.L.; Gong, B. Structure optimization of layered injection streamlined spool based on multi-objective particle swarm optimization. Oil Field Mach. 2025, 54, 46–56. [Google Scholar]
- Wang, D.F.; Kong, H.Y.; Wu, L.; Li, W.J. Simulation research on signal propagation characteristics of XLPE cable local discharge. Hubei Electr. Power 2016, 40, 53–57+62. [Google Scholar]
Material Type | Operating Frequency Range | Saturation Flux Density | Initial Relative Permeability |
---|---|---|---|
Silicon Steel | 40 Hz–400 Hz | 1.8–2.1 | (7–10) × 103 |
Permalloy | 40 Hz–1 kHz | 1.5 | (2–20) × 103 |
Mn-Zn Ferrite | 1 kHz–3 MHz | 0.35–0.4 | (3–50) × 102 |
Ni-Zn Ferrite | 100 kHz–300 MHz | 0.2–0.3 | (1–2) × 103 |
Nanocrystalline | 100 Hz–2 MHz | 1.0–1.2 | (1–10) × 104 |
Typical Point (BW, Sensitivity) | FOM (MHz·V/A) |
---|---|
(110.73, 33.76) | 61.14 |
(191.90, 19.48) | 61.12 |
(234.69, 15.82) | 60.93 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Liu, H.; Li, H.; He, N.; Teng, J.; Cao, B.; Miao, W.; Bai, R.; Li, X.; Gao, C. Design of an Ultra-High-Frequency Through-Core Current Transformer for Cable Partial Discharge Detection. Electronics 2025, 14, 2547. https://doi.org/10.3390/electronics14132547
Liu H, Li H, He N, Teng J, Cao B, Miao W, Bai R, Li X, Gao C. Design of an Ultra-High-Frequency Through-Core Current Transformer for Cable Partial Discharge Detection. Electronics. 2025; 14(13):2547. https://doi.org/10.3390/electronics14132547
Chicago/Turabian StyleLiu, Hongjing, Hongda Li, Nan He, Jingzhu Teng, Baoqin Cao, Wang Miao, Ruonan Bai, Xianglong Li, and Chunjia Gao. 2025. "Design of an Ultra-High-Frequency Through-Core Current Transformer for Cable Partial Discharge Detection" Electronics 14, no. 13: 2547. https://doi.org/10.3390/electronics14132547
APA StyleLiu, H., Li, H., He, N., Teng, J., Cao, B., Miao, W., Bai, R., Li, X., & Gao, C. (2025). Design of an Ultra-High-Frequency Through-Core Current Transformer for Cable Partial Discharge Detection. Electronics, 14(13), 2547. https://doi.org/10.3390/electronics14132547