Comprehensive Analysis of Transformer Losses-Merging Experimental Insights with Simulation Techniques
DOI:
https://doi.org/10.5281/zenodo.15411123Abstract
The transformer in electrical power system plays a vital role for increasing the voltage for transmission and reducing for distribution and utilization. The continuous operation, over loading and poor selection of core material produces losses which badly affect the efficiency of transformer and may result in burnt out the winding. The students of electrical department conducted the survey at 132 kV grid station Larkana and physical understand the parts of transformer and execute the hand on experiments in the laboratory for the understanding of losses effect on transformer. The practical results are also authenticating through MATLAB Simulink software. The aim of this study to find out the causes and effects of losses in the transformer.
Keywords:
Power Transformer, Grid station, Power Transformer, Instantaneous Over-current RelayReferences
M. S. Ali, A. Omar, A. S. A. Jaafar, and S. H. Mohamed, “Conventional methods of dissolved gas analysis using oil-immersed power transformer for fault diagnosis: A review,” Electric Power Systems Research, vol. 216, p. 109064, 2023.
X. Miao, P. Jiang, F. Pang, Y. Tang, H. Li, G. Qu, et al., “Numerical analysis and experimental research of vibration and noise characteristics of oil-immersed power transformers,” Applied Acoustics, vol. 203, p. 109189, 2023.
E. Baker, S. V. Nese, and E. Dursun, “Hybrid Condition Monitoring System for Power Transformer Fault Diagnosis,” Energies, vol. 16, p. 1151, 2023.
V. A. Thiviyanathan, P. J. Ker, Y. S. Leong, F. Abdullah, A. Ismail, and M. Z. Jamaludin, “Power transformer insulation system: A review on the reactions, fault detection, challenges and future prospects,” Alexandria Engineering Journal, 2022.
A. R. Abbasi, “Fault detection and diagnosis in power transformers: A comprehensive review and classification of publications and methods,” Electric Power Systems Research, vol. 209, p. 107990, 2022.
J. H. Harlow, Electric power transformer engineering: CRC press, 2003.
J. C. Olivares-Galván, P. S. Georgilakis, and R. Ocon-Valdez, “A review of transformer losses,” Electric Power Components and Systems, vol. 37, pp. 1046-1062, 2009.
V. I. Biryulin, A. N. Gorlov, O. M. Larin, and D. V. Kudelina, “Calculation of power losses in the transformer substation,” in 2016 13th International Scientific-Technical Conference on Actual Problems of Electronics Instrument Engineering (APEIE), 2016, pp. 210-212.
S. Sadati, A. Tahani, B. Darvishi, and M. Dargahi, “Comparison of distribution transformer losses and capacity under linear and harmonic loads,” in 2008 IEEE 2nd International Power and Energy Conference, 2008, pp. 1265-1269.
M. Sippola and R. E. Sepponen, “Accurate prediction of high-frequency power-transformer losses and temperature rise,” IEEE Transactions on Power Electronics, vol. 17, pp. 835-847, 2002.
D. Yildirim and E. F. Fuchs, “Measured transformer derating and comparison with harmonic loss factor (F/sub HL/) approach,” IEEE Transactions on Power Delivery, vol. 15, pp. 186-191, 2000.
R. Salustiano, E. Neto, and M. Martinez, “The unbalanced load cost on transformer losses at a distribution system,” in 22nd International Conference and Exhibition on Electricity Distribution (CIRED 2013), 2013, pp. 1-3.
A. Gupta and R. Singh, “Computation of transformer losses under the effects of nonsinusoidal currents,” Advanced Computing, vol. 2, p. 91, 2011.
A. H. Soomro, S. A. A. Shah, A. Khauhwar, S. Talani, A. A. Solangi, T. Soomro, et al., “Simulation based Analysis of Single Unit and Parallel Connected Three Phase AC Generator in QUEST Campus Larkana,” Sukkur IBA Journal of Emerging Technologies, vol. 5, pp. 33-41, 2022.
L. A. Hendricks, J. Mellor, R. Schneider, J.-B. Alayrac, and A. Nematzadeh, “Decoupling the role of data, attention, and losses in multimodal transformers,” Transactions of the Association for Computational Linguistics, vol. 9, pp. 570-585, 2021.
M. Dalila, M. Khalid, and M. M. Shah, “Distribution transformer losses evaluation under non-linear load,” in 2009 Australasian Universities Power Engineering Conference, 2009, pp. 1-6.
Q. Yue, C. Li, Y. Cao, Y. He, B. Cai, Q. Wu, et al., “Comprehensive power losses model for electronic power transformer,” Ieee Access, vol. 6, pp. 14926-14934, 2018.
!!! INVALID CITATION !!!
A. C. Franklin and D. P. Franklin, The J & P transformer book: a practical technology of the power transformer: Elsevier, 2016.
D. Wang, C. Mao, J. Lu, S. Fan, and F. Peng, “Theory and application of distribution electronic power transformer,” Electric power systems research, vol. 77, pp. 219-226, 2007.
J. Winders, Power transformers: principles and applications: CrC Press, 2002.
H. Wrede, V. Staudt, and A. Steimel, “Design of an electronic power transformer,” in IEEE 2002 28th Annual Conference of the Industrial Electronics Society. IECON 02, 2002, pp. 1380-1385.
A. H. Soomro, A. S. Larik, M. A. Mahar, and A. A. Sahito, “Simulation-Based Comparison of PID with Sliding Mode Controller for Matrix-Converter-Based Dynamic Voltage Restorer under Variation of System Parameters to Alleviate the Voltage Sag in Distribution System,” Sustainability, vol. 14, p. 14661, 2022.
H. Yiyan and W. Maosong, “The transformer short-circuit test and the high power laboratory in China the past, present, and future,” IEEE electrical insulation magazine, vol. 20, pp. 14-19, 2004.
Downloads
Published
How to Cite
License
Copyright (c) 2024 Siazga Research Journal

This work is licensed under a Creative Commons Attribution 4.0 International License.
