Case Study: Optimizing Grading Ring Design for High Voltage Polymeric Insulators in Power Transmission Systems for Enhanced Electric Field and Voltage Distribution by Using a Finite Element Method

Author:

Aziz Esraa1,Aouabed Fatiha2,Abdellah Hossam3,Dineva Adrienn4ORCID

Affiliation:

1. South Cairo Electricity Distribution Company, Egyptian Electricity Holding Company, Ministry of Electricity and Renewable Energy, Cairo 11611, Egypt

2. Department of Electrical Engineering, University of Mohamed El-Bashir El-Ibrahimi, Bordj Bou Arreridj 34000, Algeria

3. UMR Industries, Cairo 4954160, Egypt

4. Audi Hungaria Faculty of Automotive Engineering, Széchenyi István University, 9026 Győr, Hungary

Abstract

This research paper aims to investigate the optimal design of grading rings for high-voltage polymeric insulators in an actual power transmission system, with a focus on improving the electrical representation of the insulator strings. One such subsidiary accessory commonly used with porcelain and polymer insulator strings is the grading ring, which is employed to improve the electric field and voltage distribution surrounding the insulator string. The efficiency of insulator strings can be enhanced by grading rings, as they facilitate a more linear potential division along the strings. The design parameters of grading rings significantly influence their performance on insulator strings. In this study, we examine the optimal design of the grading rings of high-voltage polymer insulators, since no uniform design methodology has been developed for high-voltage polymer insulators, and their optimization is currently the subject of many research studies. The electric field on an outdoor polymeric insulator is examined using finite element method (FEM) software and COMSOL Multi-Physics program. A 2D model is utilized to simulate a 220 kV polymeric insulator. The effectiveness of high-voltage polymeric insulators greatly depends on the dimensions and locations of the grading rings. Therefore, the impacts of the radius of the grading ring and that of its tube and the tube’s vertical position are thoroughly investigated, under dry and humid conditions. To achieve this objective, a search algorithm is employed to adjust the dimensions and locations of the grading ring. The optimization approach in this study is based on determining the maximum electric field across the insulator surface, while ensuring that it remains below the corona initiation level.

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

Reference36 articles.

1. Al Murawwi, E., and El-Hag, A. (2011, January 15–17). Corona Ring Design for a 400 kV Non-Ceramic Insulator. Proceedings of the 2nd International Conference on Electric Power and Energy Conversion Systems (EPECS), Sharjah, United Arab Emirates.

2. Sima, W., Espino-Cortes, F.P., Chemey, E.A., and Jayaram, S.H. (2004, January 19–22). Optimization of Corona Ring Design for Long-Rod Insulators Using FEM Based Computational Analysis. Proceedings of the Conference Record of the 2004 IEEE International Symposium on Electrical Insulation, Indianapolis, IN, USA.

3. Modeling and Optimization of Dimensions of Corona Rings on High-Voltage Composite Insulators Using FEM;Farhad;Adv. Sci. Eng. Med.,2020

4. Sarma Maruvada, P. (2000). Corona Performance of High Voltage Transmission Lines, Research Studies Press Ltd., University of Michigan. [1st ed.]. ISBN 13978-0863802546.

5. Kuffel, E., Zaengl, W.S., and Kuffel, J. (2000). High Voltage Engineering: Fundamentals, Butterworth-Heinemann. [2nd ed.].

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