FEA-Based Simulation of Accelerated Ageing in a Power Cable Due to Sustained Partial Discharge Activities in a Spherical Cavity

被引:0
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作者
Umar Musa
Abdullahi A. Mati
Abdullahi A. Mas’ud
Gaddafi S. Shehu
Johnatan M. Rodríguez-Serna
Saud J. Al-Shammari
Mohamad N. K. H. Rohani
Firdaus Muhammad-Sukki
机构
[1] Ahmadu Bello University,Department of Electrical Engineering
[2] Centre for Energy Research and Training (CERT),Department of Electrical Engineering
[3] Jubail Industrial College,Departamento de Ingeniería Eléctrica, Facultad de Ingeniería
[4] Universidad de Antioquia (UdeA),Faculty of Electrical Engineering and Technology
[5] Universiti Malaysia Perlis,School of Computing, Engineering and the Built Environment
[6] Edinburgh Napier University,Razak Faculty of Technology and Informatics
[7] Universiti Teknologi Malaysia,Solar Research Institute (SRI), School of Electrical Engineering, College of Engineering
[8] Universiti Teknologi MARA (UiTM),undefined
关键词
Medium voltage; Cross-linked polyethylene cable; COMSOL and partial discharge;
D O I
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中图分类号
学科分类号
摘要
The reliability of electrical assets is greatly influenced by the quality of their insulations. Key power installations such as power cables are manufactured with polymer-based materials as part of their insulation system. However, accelerated ageing of equipment insulations due to manifestation of defect(s), and partial discharges (PDs) can offset the operation of these systems or even lead to breakdowns. In this study, a non-deterministic model to simulate the phenomenon of repetitive discharges in a spherical air-filled cavity within a practical power cable has been investigated. In addition, the work contributes to the understanding of PD behaviour and field distribution under different ageing conditions considering changes in cavity surface conductivity. First, a section of the practical XLPE cable containing the cavity is developed in 2D using COMSOL software, and a finite element analysis (FEA) of the electric field distribution within the cable insulation is performed. The magnitude of the cavity local field, that is enough to ignite a PD, is investigated. Alongside the COMSOL model, the activity of sustained internal PD is simulated in MATLAB by introducing a random sample generating factor and adjusting the model’s parameters to obtain something close to the practical results. Furthermore, the impact of continuous PD in the power cable under different cavity dimensions and surface conductivity is likewise investigated, and a phase resolved PD (PRPD) pattern is established. The result shows that the magnitude and number of PDs per cycle increase as the cavity size and its surface conductivity increase. Finally, when the cavity surface conductivity rises, the amplitude of the electric field generated by the surface charge distribution and the number of PDs per cycle approach their maximum values.
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页码:15029 / 15043
页数:14
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