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Numerical study of influential factors on partial discharges in HVDC XLPE cables

Miao He (Beijing T&D Power Research Co., Ltd, Beijing, China and School of Electronics and Computer Science, Faculty of Physical Sciences and Engineering, University of Southampton, Southampton, UK)
Miao Hao (School of Electronics and Computer Science, Faculty of Physical Sciences and Engineering, University of Southampton, Southampton, UK)
George Chen (School of Electronics and Computer Science, Faculty of Physical Sciences and Engineering, University of Southampton, Southampton, UK)
Wenpeng Li (China and State Key Laboratory of Electrical Insulation and Power Equipment, Xi’an Jiaotong University, Xi’an, China and Global Energy Interconnection Research Institute, Beijing, China)
Chong Zhang (School of Chemistry and Biological Engineering, University of Science and Technology Beijing, Beijing 100083, P.R. China and Global Energy Interconnection Research Institute, Beijing, China)
Xin Chen (Global Energy Interconnection Research Institute, Beijing, China)
Haitian Wang (Global Energy Interconnection Research Institute, Berlin, Germany)
Mingyu Zhou (Global Energy Interconnection Research Institute, Berlin, Germany)
Xianzhang Lei (Global Energy Interconnection Research Institute, Berlin, Germany)

Abstract

Purpose

For the dramatically developed high voltage direct current (HVDC) power transmission, HVDC cables play a vital role in the power transmission across seas and connections with renewable power sources. However, the condition monitoring of HVDC cables is still a challenging research topic. This paper aims to understand the influence of external factors, namely, current, cavity location and material properties, on partial discharge (PD) characteristics in HVDC cable in a numerical way referring to the refined Niemeyer’s model.

Design/methodology/approach

The influences of the three external factors are studied by a proposed numerical model for DC PDs based on the modification of a conventional PD model for AC voltage via a finite element analysis method.

Findings

The external factors can influence the discharge magnitude and discharge repetition rate via affecting the electrical conductivity of the material: DC PD is more frequent and with higher discharge magnitude when the cavity is closer to the conductor or the current through the conductor is higher. Both DC PD repetition rate and average discharge magnitude in long-term aged material are lower than virgin material. The effect of discharge on insulation degradation becomes decreasingly significant.

Research limitations/implications

The current work is based on the numerical modelling of DC PDs. Further experimental validations and comparisons are essential for improving the model.

Practical implications

The studies of the influence factors for PDs under HVDC voltage can benefit the research and practical power transmission on DC PDs, contributing the design and test of DC PDs in HVDC cables, exploring the understandings of the DC PDs’ mechanism.

Originality/value

This paper, to the best of author’s knowledge, first studies the influence factors on DC PDs based on the numerical modelling work.

Keywords

Acknowledgements

The authors are grateful for the financial support from the State Grid Cooperation of China: Science and Technology Project of SGCC(SGRIZLJS[2014]888).

Citation

He, M., Hao, M., Chen, G., Li, W., Zhang, C., Chen, X., Wang, H., Zhou, M. and Lei, X. (2018), "Numerical study of influential factors on partial discharges in HVDC XLPE cables", COMPEL - The international journal for computation and mathematics in electrical and electronic engineering, Vol. 37 No. 3, pp. 1110-1117. https://doi.org/10.1108/COMPEL-08-2017-0323

Publisher

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Emerald Publishing Limited

Copyright © 2018, Emerald Publishing Limited

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