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Power quality analysis. Case study for induction motor and 110/35kV substation

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
PL
Analiza jakości zasilania. Studium przypadku dla silnika indukcyjnego i podstacji 110/35kV
Języki publikacji
EN
Abstrakty
EN
Power system harmonics have a significant impact on the efficiency, reliability, and stability of the system. Low power quality is determined by undervoltages and overvoltages, dips and swells, blackouts, harmonic distortions, and transients, among other phenomena. ETAP is used to illustrate the specific examples related to these deviations, and the results are graphically displayed. The real induction motor and substation 110/35kV Gjakova 1 within the Kosovo Power System are analysed as a case study. Voltage deviations, load flow, and voltage changes before and after power transformers are analysed.
PL
Harmoniczne systemu elektroenergetycznego mają istotny wpływ na sprawność, niezawodność i stabilność systemu. Niska jakość energii jest określana między innymi przez podnapięcia i przepięcia, spadki i wzrosty napięcia, przerwy w dostawie prądu, zniekształcenia harmoniczne i stany przejściowe. ETAP służy do zilustrowania konkretnych przykładów związanych z tymi odchyleniami, a wyniki są wyświetlane graficznie. Prawdziwy silnik indukcyjny i podstacja 110/35 kV Gjakova 1 w systemie elektroenergetycznym Kosowa są analizowane jako studium przypadku. Analizowane są odchyłki napięcia, przepływ obciążenia i zmiany napięcia przed i za transformatorami mocy.
Rocznik
Strony
120--124
Opis fizyczny
Bibliogr. 25 poz., rys., tab.
Twórcy
autor
  • University of Prishtina, Faculty of Electrical and Computer Engineering, Street ”Sunny Hill”, nn, 10000, Prishtina
  • University of Prishtina, Faculty of Electrical and Computer Engineering, Street ”Sunny Hill”, nn, 10000, Prishtina
autor
  • University of Prishtina, Faculty of Electrical and Computer Engineering, Street ”Sunny Hill”, nn, 10000, Prishtina
Bibliografia
  • [1] P. Sanjeevikumar, C. Sharmeela, Jens Bo Holm-Nielsen and P. Sivaraman, "Power Quality in Modern Power Systems,” Amsterdam, Netherlands: Elsevier, Academic Press, 2021.
  • [2] S. Elphick, V. Gosbell, V. Smith, S. Perera, P. Ciufo and G. Drury, "Methods for Harmonic Analysis and Reporting in Future Grid Applications," IEEE Transactions on Power Deliver, vol.32, no. 2, pp. 989-995, 2017.
  • [3] P. Kuwałek, "Influence of Voltage Variation on the Measurement of Total Harmonic Distortion (THD) by AMI Smart Electricity Meters," 2021 13th International Conference on Measurement, pp. 159-162, 2021.
  • [4] K. Sobolewski and J. Sroka, "Voltage THD suppression by autonomous power source - case study," 2020 IEEE 21st International Conference on Computational Problems of Electrical Engineering (CPEE), pp. 1-4, 2020.
  • [5] A. Arranz-Gimon, A. Zorita-Lamadrid, D. Morinigo-Sotelo, and O. Duque-Perez. 2021. "A Review of Total Harmonic Distortion Factors for the Measurement of Harmonic and Interharmonic Pollution in Modern Power Systems" Energies, vol. 14, no. 20, 2021.
  • [6] N. Nakhodchi, T. Busatto and M. Bollen, "Measurements of Harmonic Voltages at Multiple Locations in LV and MV Networks," 2020 19th International Conference on Harmonics and Quality of Power (ICHQP), pp. 1-5, 2020.
  • [7] C. Hou, M. Zhu, Z. Li, Y. Li and X. Cai, "Inter Harmonic THD Amplification of Voltage Source Converter: Concept and Case Study," IEEE Transactions on Power Electronics, vol. 35, no. 12, 12651-12656, 2020.
  • [8] M. Benakcha, L. Benalia, F. Ameur and D. E Tourqui, "Control of dual stator induction generator integrated in wind energy conversion system," Journal of Energy Systems, vol. 1, no. 1, pp. 21-31, 2017.
  • [9] J.K. Phipps, J.P. Nelson and P.K. Sen, "Power quality and harmonic distortion on distribution systems," IEEE Transactions on Industry Applications, vol. 30, no. 2, pp. 476- 484, 1994.
  • [10] N. Berisha, N. Avdiu, R. Stanev, D. Stoilov and S. Morina, "Dynamic modeling of "KOSOVO A" power station synchronous generator," 2020 21st International Symposium on Electrical Apparatus & Technologies (SIELA), pp. 1-5, 2020.
  • [11] J.A.X Prabhu, S. Sharma, M. Nataraj and D.P. Tripathi, "Design of electrical system based on load flow analysis using ETAP for IEC projects," 2016 IEEE 6th International Conference on Power Systems (ICPS), pp. 1-6, 2016.
  • [12] A. CHUDY, P. A. MAZUREK, “Ultra–fast charging of electric bus fleet and its impact on power quality parameters”, Przegląd Elektrotechniczny, 99 (2023), nr. 1, 294-297.
  • [13] J. Matas, H. Martín, J. de la Hoz, A. Abusorrah, Y. Al-Turki and H. Alshaeikh, "A New THD Measurement Method with Small Computational Burden Using a SOGI-FLL Grid Monitoring System," IEEE Transactions on Power Electronics, vol. 35, no. 6, 5797-5811, 2020.
  • [14] S. Rajasekaran and C. Mahendar, "Comparative Study of THD in Multilevel Converter Using Model Predictive Controller," 2021 International Conference on Artificial Intelligence and Smart Systems (ICAIS), pp. 1559-1563, 2021.
  • [15] Y. Kou and F. Xiong, "Influence of Phase Angle for Low-order Harmonics on Vibration of an Induction Traction Motor," 2022 IEEE 5th International Electrical and Energy Conference (CIEEC), pp. 3736-3740, 2022.
  • [16] F. BABAA and O. BENNIS, "Steady State Analytical Study of Stator Current Harmonic Spectrum Components on Three-Phase Induction Motor under Unbalanced Supply Voltage," 2020 International Conference on Control, Automation and Diagnosis (ICCAD), pp. 1-6, 2020.
  • [17] Y. Wang, L. Tian, L. Zhang and H. Zhao, "Auto-tracking frequency regulation-based energy saving technology for motor systems with dynamic and potential energy load", IEEE Access, vol. 9, pp. 131806-131814, 2021.
  • [18] A. H. VanderMeulen, T. J. Natali, T. J. Dionise, G. Paradiso and K. Ameele, "Exploring new and conventional starting methods of large medium-voltage induction motors on limited kVA sources", IEEE Trans. Ind. Appl., vol. 55, no. 5, pp. 4474- 4482, 2019.
  • [19] M. ZAOUIA, A. FEKIK, A. BADJI, N. BENAMROUCHE, “A thermal model for induction motor analysis under faulty operating conditions by using finite element method”, Przegląd Elektrotechniczny, 97 (2021), nr. 1, 12-17.
  • [20] H. Lai, W. Lin and G. Pu, "Harmonic Loss Analysis of Three-Phase Induction Motor Sine Winding," 2020 IEEE International Conference on Artificial Intelligence and Computer Applications (ICAICA), pp. 1112-1115, 2020.
  • [21] G. Joksimovic, M. Mezzarobba, A. Tessarolo and E. Levi, "Optimal selection of rotor bar number in multiphase cage induction motors", IEEE Access, vol. 8, pp. 135558-135568, 2020.
  • [22] G. Joksimović, E. Levi, A. Kajević, M. Mezzarobba and A. Tessarolo, "Optimal selection of rotor bar number for minimizing torque and current pulsations due to rotor slot harmonics in three-phase cage induction motors", IEEE Access, vol. 8, pp. 228572-228585, 2020.
  • [23] E. Haile, G. Worku, AM Beyene and M. Tuka, "Modeling of doubly fed induction generator based wind energy conversion system and speed controller," Journal of Energy Systems, vol. 5, no. 1, pp. 46-59, 2021.
  • [24] N. Nakhodchi, T. Busatto and M. Bollen, "Measurements of Harmonic Voltages at Multiple Locations in LV and MV Networks," 2020 19th International Conference on Harmonics and Quality of Power (ICHQP), pp. 1-5, 2020.
  • [25] B. Prebreza, I. Krasniqi, B. Krasniqi, "Analysis of impact of atmospheric overvoltages in Kosovo power system," International Journal of Power and Energy Conversion, vol.10, no. 4, pp. 512-525, 2019.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-1e0d6993-fed7-4d1f-9c74-8527d6561f02
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