A Mathematical Model of the Magnetic Field in the Magnetic Circuit Window of the Transformer Converter on the Basis of Poisson and Laplace Differential Equations

Authors

  • Marinka Baghdasaryan Institute of Energetics and Electrical Engineering, National Polytechnic University of Armenia, Armenia
  • Gor Vardanyan Institute of Energetics and Electrical Engineering, National Polytechnic University of Armenia, Armenia
Volume: 15 | Issue: 2 | Pages: 22095-22101 | April 2025 | https://doi.org/10.48084/etasr.10391

Abstract

The technical and economic requirements for electrical devices are increasing, mainly aiming at ease of operation, increased efficiency and measurement accuracy, as well as cost reduction. These requirements can be met by conducting a comprehensive study of the components of each designed device and their characteristics. For a contactless current meter, which has found wide application in the power system, meeting the above requirements is of particular interest. However, t is impossible to achieve this without putting forward new approaches to the current converter study. Since the output signal of the current converter mainly depends on the position of the conductive conductor in the magnetic circuit window and on the structural parameters of the magnetic circuit, a new modeling approach is proposed in this paper. Analytical dependencies have been obtained which, unlike known analogues, allow one to evaluate the magnetic field image without discretizing the observed area, as well as by entering the initial values of the potential. The proposed dependencies allow the determination of the characteristic parameters of the field at any position of the conductor, while in the case of known methods it is necessary to discretize the observed area again for each new position, which leads to additional difficulties.

Keywords:

current converter, magnetic circuit, magnetic field, transformer converter

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References

P. Ripka, "Contactless measurement of electric current using magnetic sensors," Technisches Messen, vol. 86, no. 10, pp. 586–598, Oct. 2019.

M. K. Baghdasaryan, Methods of Research and Optimization of the Mineral Raw Material Grinding Process. New York: Nova Science Pub Inc, 2019.

M. Baghdasaryan, A. Ulikyan, and A. Arakelyan, "Application of an Artificial Neural Network for Detecting, Classifying, and Making Decisions about Asymmetric Short Circuits in a Synchronous Generator," Energies, vol. 16, no. 6, Jan. 2023, Art. no. 2703.

H. Su, H. Li, W. Liang, C. Shen, and Z. Xu, "Non-Contact Current Measurement for Three-Phase Rectangular Busbars Using TMR Sensors," Sensors, vol. 24, no. 2, Jan. 2024, Art. no. 388.

K. T. Selva, O. A. Forsberg, D. Merkoulova, F. Ghasemifard, N. Taylor, and M. Norgren, "Non-contact Current Measurement in Power Transmission Lines," Procedia Technology, vol. 21, pp. 498–506, Jan. 2015.

F. Pranjić and P. Virtič, "Development of Mathematical Models in Explicit Form for Design and Analysis of Axial Flux Permanent Magnet Synchronous Machines," Applied Sciences, vol. 10, no. 21, Jan. 2020, Art. no. 7695.

M. Bezzubceva and V. Volkov, "Mathematical model for calculating the force field of loads in the magnetic liquefied layer of electromechanical dispersants," E3S Web of Conferences, vol. 279, 2021, Art. no. 03010.

D. Lin and X. Chen, "Mathematical Models of 3D Magnetic Field and 3D Positioning System by Magnetic Field," Applied Mathematics & Information Sciences, vol. 8, no. 4, pp. 1647–1654, Jul. 2014.

G. G. Lazareva, I. P. Oksogoeva, and A. V. Sudnikov, "Mathematical Model of Matter Transfer in a Helical Magnetic Field Using Boundary Conditions at Infinity," Journal of Mathematical Sciences, vol. 285, no. 4, pp. 496–504, Nov. 2024.

J. Ding, Y. Liu, S. Huang, H. Su, and L. Yao, "3-D Magnetic Field Mathematical Model Considering the Eccentricity and Inclination of Magnetic Gears," IEEE Transactions on Magnetics, vol. 60, no. 11, pp. 1–15, Aug. 2024.

Z. Amin and S. B. Sharif, "Use of integration to calculate the magnetic field in a space by using mathematica software for the effective production of nano-particles," Journal of Interdisciplinary Mathematics, vol. 25, no. 7, pp. 2007–2017, Oct. 2022.

E. Paese, M. Geier, R. P. Homrich, and R. Rossi, "A coupled electric–magnetic numerical procedure for determining the electromagnetic force from the interaction of thin metal sheets and spiral coils in the electromagnetic forming process," Applied Mathematical Modelling, vol. 39, no. 1, pp. 309–321, Jan. 2015.

J. Swineburne, The Measurement of Electric Currents: Electrical Measuring Instruments. Palala Press, 2016.

T. Y. Kyaw, A. Torii, K. Doki, and A. Ueda, "Non-contact Current Measurement in Small Electric Parts by Using a Non-contact Thermometer," IEEJ Transactions on Electronics, Information and Systems, vol. 124, no. 12, pp. 2470–2474, 2004.

B. D. Thanh and V. D. Quoc, "Computation and Evaluation of the Electromagnetic Parameters of Amorphous Core Transformers," Engineering, Technology & Applied Science Research, vol. 14, no. 1, pp. 12476–12481, Feb. 2024.

A. Sadeghi, S. Μ. S. Barzegar, and M. Yazdani-Asrami, "A Simple and Fast Computation Equivalent Circuit Model to Investigate the Effect of Tape Twisting on the AC Loss of HTS Cables," Engineering, Technology & Applied Science Research, vol. 12, no. 1, pp. 8168–8174, Feb. 2022.

G. Razin and A. Shchelkin, Contactless measurement of electric currents. Atomizdat, Moscow, 1974.

O. Portugall, S. Krämer, and Y. Skourski, "Magnetic Fields and Measurements," in Handbook of Magnetism and Magnetic Materials, M. Coey and S. Parkin, Eds. Cham: Springer International Publishing, 2020, pp. 1–70.

Y. Andreev and G. Abramzon, Current converters for measurements without breaking the circuit. (in Russian), Energiya, 1979.

E. Stano, P. Kaczmarek, and M. Kaczmarek, "Understanding the Frequency Characteristics of Current Error and Phase Displacement of the Corrected Inductive Current Transformer," Energies, vol. 15, no. 15, Jan. 2022, Art. no. 5436.

S. E. Zocholl, Analyzing and Applying Current Transformers. Schweitzer Engineering Laboratories, Inc., 2004.

E. V. Karpukhin and A. N. Bormotov, "Numerical methods to calculate magnetic fields of magnetostriction level converter," E3S Web of Conferences, vol. 376, 2023, Art. no. 01101.

W. Sarakorn and C. Vachiratienchai, "Hybrid finite difference–finite element method to incorporate topography and bathymetry for two-dimensional magnetotelluric modeling," Earth, Planets and Space, vol. 70, no. 1, Jun. 2018, Art. no. 103.

T. Chen, L. Wang, Y. Gu, and C. Tang, "Review on numerical analysis of electromagnetic characteristics for ferromagnetic wear debris," The Journal of Engineering, vol. 2019, no. 23, pp. 8715–8719, 2019.

Z. Qi, X. Li, K. Fan, and Q. Zhi, "The three-dimensional finite element forward modelling of complex excitation source NMR," Journal of Geophysics and Engineering, vol. 17, no. 1, pp. 127–137, Feb. 2020.

K. J. Binns and P. J. Lawrenson, Analysis and Computation of Electric and Magnetic Field Problems, 2nd ed. Elsevier Science & Technology Books, 2013.

A. S. Demidov, Equations of Mathematical Physics: Generalized Functions and Historical Notes, 1st ed. Springer, 2023.

F. Mainardi, Ed., Special Functions with Applications to Mathematical Physics. MDPI, 2023.

M. A. B. Deakin, "Successive discoveries of the Heaviside expansion theorem," International Journal of Mathematical Education in Science and Technology, vol. 17, no. 1, pp. 51–60, Jan. 1986.

P. J. Shepherd, A Course in Theoretical Physics, 1st ed. Chichester, West Sussex, United Kingdom: Wiley, 2013.

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How to Cite

[1]
Baghdasaryan, M. and Vardanyan, G. 2025. A Mathematical Model of the Magnetic Field in the Magnetic Circuit Window of the Transformer Converter on the Basis of Poisson and Laplace Differential Equations. Engineering, Technology & Applied Science Research. 15, 2 (Apr. 2025), 22095–22101. DOI:https://doi.org/10.48084/etasr.10391.

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