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Impact of heterogeneous cavities on the electrical constraints in the insulation of high-voltage cables

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The main insulation layer is the most important layer of the high-voltage cable, and the quality of this material directly affects the life of the cable. It is also known that contamination, porosity and associated partial discharges in the insulation can affect the service life of cables. In this paper, we use the COMSOL Multiphysics software, which is based on the finite element method in AC/DC, 2D electrostatic. Our study shows the effect of heterogeneous cavities on the functioning of electrical cables. This work contains the study of electric field distribution and potential of a model of high voltage cable; we took into account the absence and the presence of heterogeneous cavities. The study was conducted using numerical results with mathematical validation. The obtained results are considered satisfactory, favorable and very promising.
Czasopismo
Rocznik
Strony
art. no. 2023109
Opis fizyczny
Bibliogr. 17 poz., rys., tab.
Twórcy
autor
  • Mechanical Engineering Department, Faculty of Technology, University of M’sila, M’sila, Algeria
  • Laboratoire de Génie Electrique (LGE), Université de M’sila, M’sila, Algérie
  • Electrical Engineering Department, Faculty of Technology, University of M’sila, M’sila, Algeria
autor
  • Electrical Engineering Department, Faculty of Technology, University of M’sila, M’sila, Algeria
  • Department of Electrical Engineering, Faculty of engineer Sciences, University of Boumerdes, Boumerdes, Algeria
Bibliografia
  • 1. Khouildi E, Attia R, Chtourou N. Numerical modeling of the electric field and the potential distributions in heterogeneous cavities inside XLPE power cable insulation. Journal of Electrical and Electronics Engineering. 2016; 9(2):37-42. https://www.proquest.com/openview/729621cf0b231 d13ee61aeffa80074f4/1?pqorigsite=gscholar&cbl=54417.
  • 2. Grzybowski S, Shrestha P, Cao L. Electrical aging phenomena of XLPE and EPR cable insulation energized by switching impulses. International Conference on High Voltage Engineering and Application. 2008:422-425. https://doi.org/10.1109/ICHVE.2008.4773963.
  • 3. Boukezzi L, Boubakeur B. Numerical study using FVM of electrical field distribution in XLPE insulation cables containing cavities. Canadian Journal on Electrical and Electronics Engineering. 2011; 2(3):57- 63.
  • 4. Nadolny Z. Electric field distribution and dielectric losses in XLPE insulation and semiconductor screens of high-voltage cables. Energies. 202215(13):1-14. https://doi.org/10.3390/en15134692.
  • 5. Seghier T. Étude des décharges partielles et leurs influences sur l’apparition des arborescences dans la couche isolante des câbles haute tension. Doctoral thesis, Department of Electrical Engineering, University of Biskra. Algeria, Février 2011. http://thesis.univ-biskra.dz/1745/.
  • 6. Benguesmia H, Seghiri H, Akka AR, Khadar S, M’ziou N. Numerical study of electrical field distribution in insulation function of HV cables containing cavities using Comsol multiphysics. 9ème Journées des sciences de l’ingénieur JSI’2020, 2020, Sfax, Tunisia.
  • 7. Benguesmia H, Akka A.R, Seghiri H, Khadar S, M’ziou N. Study of a partial discharge in an HV cable using finite element method. 9ème Journées des sciences de l’ingénieur JSI’2020. 2020, Sfax, Tunisia.
  • 8. Xiaojun Ye. Modélisation et simulation des systèmes de production: une approche orientée-objets. Doctoral thesis, Modélisation et simulation. Français, INSA de Lyon. 1994. https://tel.archives-ouvertes.fr/tel00821121.
  • 9. https://www.domomat.com/blog/quest-ce-qu-un-cableelectrique/
  • 10. Uydur CC, Arikan O, Kalenderli O. The effect of insulation defects on electric and magnetic field distributions in power cables. Tehnički vjesnik. 2021; 28(4):1152-1160. https://doi.org/10.17559/TV20200205084232.
  • 11. Florkowski M. Influence of insulating material properties on partial discharges at DC voltage. Energies. 2020;(13):4305. https://doi.org/10.3390/en13174305.
  • 12. Boudjella H, Ayad Anei, Rouibah T, Larouci B, Alghamdi TAH, Althobaiti A, Ghoneim SSM, Tayeb AS. Magnetic field evaluation around 400 KV underground power cable under harmonics effects. Diagnostyka. 2022;23(2):2022209. https://doi.org/10.29354/diag/150068.
  • 13. Medoukali1 H, Guibadj M, Zegnini B. Study of electrical and electromechanical constraints in the insulation of high-voltage cables containing micro cavities: effect of space charges. IET Generation, Transmission & Distribution. 2017;11(13):3231-3235. https://doi.org/10.1049/iet-gtd.2016.1401.
  • 14. Elaggoune A, Seghier T, Zegnini B, Belkheiri M. Partial discharge activity diagnosis in electrical cable terminations using neural networks. Transactions on Electrical and Electronic Materials. 2021;22:904-912. https://doi.org/10.1007/s42341-021-00314-3.
  • 15. Seghir T, Mahi D, Lebey T, Malec D. analysis of the electric field and the potential distribution in cavities inside solid insulating electrical materials. Conference proceeding, International Comsol conference. Paris. 2006:31-34.
  • 16. Benguesmia H, Bakri B, Khadar S, Hamrit F, M’ziou N. Experimental study of pollution and simulation on insulators using COMSOL® under AC voltage. Diagnostyka. 2019;20(3):21-29. https://doi.org/https://doi.org/10.29354/diag/110330.
  • 17. Benguesmia H, M’ziou N, Boubakeur A. Simulation of the potential and electric field distribution on high voltage insulator using the finite element method. Diagnostyka. 2018;19(2):41-52. https://doi.org/10.29354/diag/86414.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-4bdb47ca-22f2-46f7-a8d0-d1db5f0a7c8b
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