Research Article | | Peer-Reviewed

Earthing System Analysis for Steel Tower Carrying 33kV Line

Received: 14 February 2024    Accepted: 8 March 2024    Published: 29 June 2024
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Abstract

This study examines the critical analysis of earthing systems connected to steel towers that carry 33 kV power lines. Ensuring the safety and dependability of power transmission infrastructure becomes crucial in light of the growing demand for energy. By utilizing sophisticated computational methodologies and simulation approaches, this research carefully investigates how well the earthing system performs in various operational circumstances and fault scenarios. A thorough modeling technique is used in the analysis, which considers a number of variables including fault currents, tower design, soil resistivity, and grounding electrode configurations. In order to give a comprehensive understanding of the behavior of the system and its consequences for operational reliability, the study simulates many situations, including normal operation and fault occurrences. By using sophisticated numerical simulations and sensitivity analysis, the research pinpoints important factors affecting the earthing system's efficiency and suggests creative optimization techniques. These optimization techniques could involve changing the location of the grounding electrode, improving the materials used in the conductor, or putting additional safety precautions in place. The researcher's conclusions have important ramifications for the engineering community since they provide practical advice on how to strengthen the security and robustness of power transmission networks. The study adds to the continuous efforts to improve the efficiency and dependability of electrical grids by addressing potential weaknesses in the architecture of the earthing system. This thorough study advances the field of earthing system engineering by offering a solid platform for next studies and real-world implementations. Through this work, we can better understand the dynamics of earthing systems and optimization methodologies, which will help build more resilient and sustainable power transmission infrastructure that can adapt to society's changing energy needs.

Published in Engineering Science (Volume 9, Issue 2)
DOI 10.11648/j.es.20240902.11
Page(s) 21-38
Creative Commons

This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2024. Published by Science Publishing Group

Keywords

Earthing, Grounding, Towers, Electrodes, Analysis, Grid

References
[1] Abdulkareem, A. C., Awosope, O. A., Adoghe, A. U. & Alayande, S. A. (2016). Investigating the Effect of Asymmetrical Faults at Some Selected Buses on the Performance of the Nigerian 330-kV Transmission System. International Journal of Applied Engineering Research, 11(7), 5110-5122.
[2] Abdulkareem, A. C., Awosope, O. A., & Awelewa, A. A. (2016). The use of three-phase fault analysis for rating circuit breakers on Nigeria 330 kV transmission lines. Journal Engineering and Applied Sciences, 11(12), 2612-2622.
[3] ADENIYI D ADEBAYO and CHINEDU JAMES UJAM (2023) Analysis Of Electrical Grounding Designs Of SubStations And Lines: International Journal Of Scholarly Research In Engineering And Technology, 02(01), 031-040.
[4] Andrew, A., Sen, P. K. & Clifton, O. (2014). Designing safe and reliable grounding in AC substations with poor soil resistivity: An interpretation of IEEE Std. 80, 1-7.
[5] Awalin, L., Mokhlis, H. & Abu Bakar, A. H. (2012). Recent Developments in Fault Location Methods for Distribution Networks. Przeglad Elektrotechniczny, 88, 206-212.
[6] BS 7430 (2011). Code of Practice for Protective Earthing of Electrical Installations.
[7] Buba, S. D., Wan Ahmad, W. F., Ab Kadir, M. Z. A., Gomes, C., Jasni, J., & Osman, M. (2014). Reduction of Earth Grid Resistance by addition of Earth Rods to various Grid Configurations. ARPN Journal of Engineering and Applied Science. 11(3), 4533-4538.
[8] Chebbi, S. & Meddeb, A. (2015). Protection plan medium voltage distribution network in Tunisia. International scholarly and scientific Research & Innovation, 9(2), 1307-6892.
[9] Cifuentes-Chaves, H., Mora-Florez J. & Perez Londoris S. (2017). Time Domain Analysis for Fault Location in Power Distribution System Considering the Load Dynamics. Electrical Power System Research, 146, 331-340.
[10] Daisy, M. & Dashti, R. (2016). Single Phase Fault Location in Electrical Distribution Feeder Using Hybrid Method. Journal on Energy, 103, 356-368.
[11] Esobinenwo, C. S., Akinwole, B. O. H., & Omeje C. O. (2014). Earth mat designfor132/33kv substation in Rivers state using ETAP. International Journal of Engineering Trends and Technology (IJETT). 15(8), 389-402.
[12] Gabrial-Benmou, Y. A. L. (2006). The Protection of Synchronous Generators: In Grigspy, L. L. (Ed.) Electric Power Engineering Handbook-Electric Power Generation, Transmission, and Distribution. CRC press.
[13] Holtzhausen, J. P. "High Voltage Insulators" (PDF). IDC Technologies. Retrieved 2008-10-17.
[14] IEC 60137:2003. 'Insulated bushings for alternating voltages above 1,000 V.' IEC, 2003.
[15] Kakani, L. (2010). Electronics Theory and Applications. New Age International. p. 7. ISBN 978-81-224-1536-0.
[16] Sarangi, P. P., Sahu, A., & Panda, M. (2013). A Hybrid Differential Evolution and Back Propagation Algorithm for Feedforward Neural Network Training. International Journal of Computer Applications, 84, 1-9.
[17] Usman I. A, (2015). A design of protection schemes for AC Transmission lines considering a case study. International Journal of Electrical and Electronics Engineers, 7(2).
Cite This Article
  • APA Style

    David, A. A., Ncheta, I. E., Rufus, O. O. (2024). Earthing System Analysis for Steel Tower Carrying 33kV Line. Engineering Science, 9(2), 21-38. https://doi.org/10.11648/j.es.20240902.11

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    ACS Style

    David, A. A.; Ncheta, I. E.; Rufus, O. O. Earthing System Analysis for Steel Tower Carrying 33kV Line. Eng. Sci. 2024, 9(2), 21-38. doi: 10.11648/j.es.20240902.11

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    AMA Style

    David AA, Ncheta IE, Rufus OO. Earthing System Analysis for Steel Tower Carrying 33kV Line. Eng Sci. 2024;9(2):21-38. doi: 10.11648/j.es.20240902.11

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  • @article{10.11648/j.es.20240902.11,
      author = {Adebayo Adeniyi David and Ifeagwu Emmanuel Ncheta and Ogunsakin Olatunji Rufus},
      title = {Earthing System Analysis for Steel Tower Carrying 33kV Line
    },
      journal = {Engineering Science},
      volume = {9},
      number = {2},
      pages = {21-38},
      doi = {10.11648/j.es.20240902.11},
      url = {https://doi.org/10.11648/j.es.20240902.11},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.es.20240902.11},
      abstract = {This study examines the critical analysis of earthing systems connected to steel towers that carry 33 kV power lines. Ensuring the safety and dependability of power transmission infrastructure becomes crucial in light of the growing demand for energy. By utilizing sophisticated computational methodologies and simulation approaches, this research carefully investigates how well the earthing system performs in various operational circumstances and fault scenarios. A thorough modeling technique is used in the analysis, which considers a number of variables including fault currents, tower design, soil resistivity, and grounding electrode configurations. In order to give a comprehensive understanding of the behavior of the system and its consequences for operational reliability, the study simulates many situations, including normal operation and fault occurrences. By using sophisticated numerical simulations and sensitivity analysis, the research pinpoints important factors affecting the earthing system's efficiency and suggests creative optimization techniques. These optimization techniques could involve changing the location of the grounding electrode, improving the materials used in the conductor, or putting additional safety precautions in place. The researcher's conclusions have important ramifications for the engineering community since they provide practical advice on how to strengthen the security and robustness of power transmission networks. The study adds to the continuous efforts to improve the efficiency and dependability of electrical grids by addressing potential weaknesses in the architecture of the earthing system. This thorough study advances the field of earthing system engineering by offering a solid platform for next studies and real-world implementations. Through this work, we can better understand the dynamics of earthing systems and optimization methodologies, which will help build more resilient and sustainable power transmission infrastructure that can adapt to society's changing energy needs.
    },
     year = {2024}
    }
    

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  • TY  - JOUR
    T1  - Earthing System Analysis for Steel Tower Carrying 33kV Line
    
    AU  - Adebayo Adeniyi David
    AU  - Ifeagwu Emmanuel Ncheta
    AU  - Ogunsakin Olatunji Rufus
    Y1  - 2024/06/29
    PY  - 2024
    N1  - https://doi.org/10.11648/j.es.20240902.11
    DO  - 10.11648/j.es.20240902.11
    T2  - Engineering Science
    JF  - Engineering Science
    JO  - Engineering Science
    SP  - 21
    EP  - 38
    PB  - Science Publishing Group
    SN  - 2578-9279
    UR  - https://doi.org/10.11648/j.es.20240902.11
    AB  - This study examines the critical analysis of earthing systems connected to steel towers that carry 33 kV power lines. Ensuring the safety and dependability of power transmission infrastructure becomes crucial in light of the growing demand for energy. By utilizing sophisticated computational methodologies and simulation approaches, this research carefully investigates how well the earthing system performs in various operational circumstances and fault scenarios. A thorough modeling technique is used in the analysis, which considers a number of variables including fault currents, tower design, soil resistivity, and grounding electrode configurations. In order to give a comprehensive understanding of the behavior of the system and its consequences for operational reliability, the study simulates many situations, including normal operation and fault occurrences. By using sophisticated numerical simulations and sensitivity analysis, the research pinpoints important factors affecting the earthing system's efficiency and suggests creative optimization techniques. These optimization techniques could involve changing the location of the grounding electrode, improving the materials used in the conductor, or putting additional safety precautions in place. The researcher's conclusions have important ramifications for the engineering community since they provide practical advice on how to strengthen the security and robustness of power transmission networks. The study adds to the continuous efforts to improve the efficiency and dependability of electrical grids by addressing potential weaknesses in the architecture of the earthing system. This thorough study advances the field of earthing system engineering by offering a solid platform for next studies and real-world implementations. Through this work, we can better understand the dynamics of earthing systems and optimization methodologies, which will help build more resilient and sustainable power transmission infrastructure that can adapt to society's changing energy needs.
    
    VL  - 9
    IS  - 2
    ER  - 

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Author Information
  • Department of Electrical and Electronic Engineering, Federal University, Otuoke, Nigeria

  • Department of Electrical and Electronic Engineering, Federal University, Otuoke, Nigeria

  • Department of Information and communication (I.C.T), Federal University, Otuoke, Nigeria

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