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Measures and technical means for increasing efficiency and reliability of extra high voltage transmission lines

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
PL
Techniki zwiększania skuteczności i niezawodności linii wysokiego napięcia 750 kV
Języki publikacji
EN
Abstrakty
EN
Electromagnetic transients are considered in the implementation of three-phase automatic reclose on the transmission line of extra high voltage 750 kV. The influence of automatic shunting of phases and pre-insertion active resistance for limiting the characteristics of the aperiodic component of the current, which obstructs the transition of full current through zero, is evaluated. The paper analyses measures taking into account the effect of changing the degree of compensation of charging power and the angles of switching on an SF6 circuit breaker. Sub-schemes of disconnected undamaged phases of the extra high voltage transmission line for the investigation of the aperiodic current component have been developed. The values of the pre-insertion active resistances of different connection and automatic shunting of the phases are determined at which there is an effective reduction of the characteristics of the aperiodic component of the current. In the software environment, a model was developed and switching transient processes were simulated in the 750 kV transmission line. Operating modes that are potentially dangerous for SF6 circuit breakers are determined and recommendations are given to avoid them. Currently the technical and economic requirements for power transmission lines designed for the transport of electricity from large power plants and for the communication of powerful energy systems are increasing. Today there is importance of reducing specific investment in the construction of new and reconstruction of existing lines. The solution to these issues is associated with the maximum use of power lines by increasing their power transfer capability and controlling modes, especially in operating emergency conditions and post-emergency operation of power systems.
PL
Stany przejściowe elektromagnetyczne są brane pod uwagę przy wdrażaniu trójfazowego automatycznego ponownego zamykania na linii przesyłowej bardzo wysokiego napięcia 750 kV. W pracy wpływ automatycznego bocznikowania faz i rezystancji wstępnej w celu ograniczenia charakterystyki aperiodycznego składnika prądu, który utrudnia przejście pełnego prądu przez zero. W pracy przeanalizowano parametry uwzględniające wpływ zmiany stopnia kompensacji mocy ładowania i kątów włączenia wyłącznika SF6. W środowisku oprogramowania opracowano model i symulowano procesy przejściowe w linii przesyłowej 750 kV.
Rocznik
Strony
135--141
Opis fizyczny
Bibliogr. 34 poz., rys., tab.
Twórcy
  • Institute of Electrodynamics of NAS of Ukraine, Kiev, Ukraine
Bibliografia
  • [1] Sawick A., Modified arc models in a SF6 power circuit breaker, Przegląd Elektrotechniczny, 1 (2018), 93-96
  • [2] Czaban A., Lis M., Chrzan M., Szafraniec A., Levoniuk V. , Mathematical modelling of transient processes in power supply grid with distributed parameters, Przeglad elektrotechniczny, 2018, nr 5, 17-20.
  • [3] Machowski J., Kacejko P., Robak S., Miller P., Wancerz M., Analizysystemu elektroenergetycznego w średniookresowym planowaniurozwoju, Przegląd Elektrotechniczny, R. 89 (2013), nr 6, 234-237
  • [4] Flisowski , Z. Kosztaluk , R., Methods of overvoltage reduction in powernetworks,Przeglad Elektrotechniczny, v. 77 (2001), nr. 11, 267-271
  • [5] Chmielewski T., Oramus P., Florkowski M., Modeling of electric arc inanalysis of switching overvoltages during current interruption by LVelectromechanical relays, Przegląd Elektrotechniczny, 2016, nr. 2, 202-206
  • [6] Liang Ji, Booth C., Dyśko A., Kawano F., Beaumont P., Improved Fault Location Through Analysis of System Parameters During Autoreclose Operations on Transmission Lines, Power Delivery IEEE Transactions on, vol. 29 (2014), No. 6, 2430-2438
  • [7] A.-M. Hariri , H. Hashemi-Dezaki, and M. A. Hejazi , "A novel generalized analytical reliability assessment method of smart grids including renewable and non-renewable distributed generations and plug-in hybrid electric vehicles," Reliability Engineering & System Safety, 2020, vol. 196, 1-17.
  • [8] H. Hashemi -Dezaki, A.-M. Hariri, and M. A. Hejazi , "Impacts of load modeling on generalized analytical reliability assessment of smart grid under various penetration levels of wind/solar/non-renewable distributed generations," Sustainable Energy, Grids and Networks, 2019, vol. 20, 1-16.
  • [9] H. Hashemi -Dezaki, H. Askarian-Abyaneh, A. Shams-Ansari, M. Dehghani Sanij, and M. A. Hejazi, "Direct cyber-power interdependencies-based reliability evaluation of smart grids including wind/solar/diesel distributed generations and plug-in hybrid electrical vehicles," International Journal of Electrical Power & Energy Systems, vol. 93,1-14.
  • [10] Sili Y.; Gang L.; PeiRen W.; Dui feng Y. ; Xiangxiang G. ; Yuan Y. , Discussion on the Problem About Capacitive Current Switching of EHV and UHV AC Circuit Breaker, 2017 4th International Conference on Electric Power Equipment - Switching Technology (ICEPE-ST), 22-25
  • [11] Kachesov V. , Kachesov D. , Requirements for switching algorithms of EHV shunt compensated OHL by SF6 circuit breakers, Proceedings of International Conference on power systems Transients (IPST 2011) , Delft, Netherlands, 2011, 15- 18
  • [12] Naumkin I., Balabin M., Lavrushenko N., Naumkin R. Simulation of the 500 kV SF6 circuit breaker cutoff process during the unsuccessful three-phase autoreclosing, Proceedings of International Conference on power systems Transients (IPST 2011), Delft, Netherlands, 2011, 5-11
  • [13] Jian H., Xiaofeng J., Xiaoguang H., Automated monitoring and analysis for high voltage circuit breaker, 2010 5th IEEE Conference on Industrial Electronics and Applications, Taichung, 2010, 560-564
  • [14] Gong R., Wang S., Luo X., Analysis and Design in Extra High Voltage Circuit Breakers Employing Shunted Capacitors, 2012 Sixth International Conference on Electromagnetic Field Problems and Applications, Dalian, Liaoning, 2012, 1-4
  • [15] Lazimov T., Saafan E., Babayeva N., Transitional processes at switching-off capacitor banks by circuit-breakers with pre-insertion resistors, 2015 Modern Electric Power Systems (MEPS), Wroclaw, 2015, 1-4
  • [16] Lazimov T., Imanov S. , Saafan E., Transitional recovery voltages at capacitive currents switching-offs by vacuum and SF6 circuit-breakers, 2010 Modern Electric Power Systems, Wroclaw, 2010, 1-5
  • [17] Kuchanskyy V. , Application of Controlled Shunt Reactors for Suppression Abnormal Resonance Overvoltages in Assymetric Modes, 2019 IEEE 6th International Conference on Energy Smart Systems (ESS), Kyiv, Ukraine, 2019, 122-125
  • [18] Kuchanskyy V., The prevention measure of resonance overvoltges in extra high voltage transmission lines, 2017 IEEE First Ukraine Conference on Electrical and Computer PRZEGLĄD ELEKTROTECHNICZNY, ISSN 0033-2097, R. 96 NR 11/2020 141 Engineering (UKRCON), Kiev, 2017, 436-441
  • [19] Tugay Y. , The resonance overvoltages in EHV network, Proceedings of IEEE Sponsored Conference EPQU’09 – International Conference on Electrical Power Quality and Utilisation, Poland, Lodz, 2009, 14-18.
  • [20] V. Kuznetsov, Y. Tugay and V. Kuchanskyy, "Investigation of transposition EHV transmission lines on abnormal overvoltages", Technical electrodynamics, 51-56, Nov. 2013.
  • [21] V. Kuznetsov, Y. Tugay and V. Kuchanskyy, " Influence of corona discharge onthe internal ovevoltages in high way electrical networks", Technical electrodynamics, 55- 60, Nov. 2017.
  • [22] Kuznetsov V., Tugay Y., Kuchanskyy V. Overvoltages in open-phase mode. Tekhnichna Elektrodynamika. No 2. pp.40–41.2012
  • [23] Kuchanskyy V. , The application of controlled switching device for prevention resonance overvoltages in nonsinusoidal modes, 2017 IEEE 37th International Conference on Electronics and Nanotechnology (ELNANO), Kiev, 2017, 394- 399.
  • [24] Vladislav Kuchanskyy, Olena Rubanenko, Influence assesment of autotransformer remanent flux on resonance overvoltage UPB Scientific Bulletin, Series C: Electrical Engineering, 2020, 82(3):233-250.
  • [25] Live Tank Circuit Breakers. Buyer's Guide. ABB AB. 2014. 152 p.
  • [26] T. Oros z , Z. Á. Tamus and I . Vajda, "Modeling the high frequency behavior of the Rogowski-coil passive L/r integrator current transducer with analytical and finite element method," 2014 49th International Universities Power Engineering Conference (UPEC), Cluj-Napoca, 2014, pp. 1-4, doi: 10.1109/UPEC.2014.6934663.
  • [27] Su C., Wang P., Liao C., Chou M., Analysis of harmonic overvoltages during transformer energization for mass rapid transit systems, 2016 10th International Conference on Compatibility, Power Electronics and Power Engineering (CPE-POWERENG), Bydgoszcz, 2016,. 33-38
  • [28] Abdulsalam S. , Xu W. , A sequential phase energization method for transformer inrush current reduction-transient performance and practical considerations, IEEE Transactions on Power Delivery, 2007, vol. 22(1), 208-216
  • [29] Brunke J . H. , Fröhlich K. J . , Elimination of transformer inrush currents by controlled switching – part II: application and performance considerations, IEEE Transactions on Power Delivery, 2001, vol. 16(2), 281–285
  • [30] Cho C. , Lee J. , Min B., Application of controlled switching device for high voltage circuit breaker in KEPCO real power system, 2017 4th International Conference on Electric Power Equipment - Switching Technology (ICEPE-ST), Xi'an, 2017, 492-495
  • [31] Hasibar R., Legate A., Brunke J., Peterson W., The Application of HighSpeed Grounding Circuit breakers for Single-Pole Reclosing on 500 kV Power Systems, IEEE Transactions on Power Apparatus and Systems, vol. PAS-100, No. 4, 1512-1515
  • [32] Baina H., Xin L., Jianyuan X., The Analysis of Secondary Arc Extinction Characteristics on UHV Transmission Lines, 2008 International Conference on High Voltage Engineering and Application, Chongqing, 2008, 516-519
  • [33] Mizoguchi H., Hioki I ., Yokota T., Yamagata Y. Tanaka K., Development of an interrupting chamber for 1000 kV highspeed grounding circuit breakers, IEEE Transactions on Power Delivery, vol. 13, No. 2, 495-502
  • [34] Chi T., Xin L., Jianyuan X., Zhen-xin G., Comparison and Analysis on Very Fast Transient Overvoltage Based on 550kV GIS and 800kV GIS, 2008 International Conference on High Voltage Engineering and Application, Chongqing, 2008, 288-291.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-382e7fb7-28e1-4cb7-8292-38caa1639a1c
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