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Currents’ Physical Components (CPC)–based Power Theory A Review. Part II: Filters and reactive, switching and hybrid compensators

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Warianty tytułu
PL
Teoria mocy oparta na koncepcji Składowych Fizycznych Prądów (CPC). Część II: Filtry oraz compensatory reaktancyjne, kluczujące i hybrydowe. Artykuł przeglądowy
Języki publikacji
EN
Abstrakty
EN
The CPC-based power theory (PT) provides fundamentals for the development of the reactive compensators needed for the improvement of the effectiveness of the energy transfer. It also provides fundamentals for the development of algorithms for control of switching compensators and hybrid compensators that serve the same purpose. These fundamentals have been developed, along with the CPC, step-by-step, with partial results published in Polish, German, English and American journals and in conference proceedings, often not reported on the main databases and consequently, difficult to be found. This Review provides a draft of these CPC-based fundamentals of compensation with references to more detailed results.
PL
Teoria mocy obwodów i systemów elektrycznych, oparta na koncepcji Składowych Fizycznych Prądów, tworzy podstawę teoretyczną syntezy kompensatorów potrzebnych do poprawy skuteczności przenoszenia energii. Dotyczy to także podstaw konstrukcji algorytmów sterowania kompensatorów kluczujących oraz hybrydowych. Metody kompensacji, oparte na teorii mocy CPC, były rozwijane stopniowo, z częściowymi wynikami publikowanymi w polskich, niemieckich, angielskich oraz amerykańskich czasopismach i materiałach konferencyjnych, często nie notowanych w głównych indeksach i trudnych do odnalezienia. Przegląd ten zestawia wynikające z teorii mocy CPC metody syntezy kompensatorów reaktancyjnych i algorytmy sterowania kompensatorów kluczujących, ze wskazaniem źródeł bardziej szczegółowych wyników.
Rocznik
Strony
1--11
Opis fizyczny
Bibliogr. 48 poz., rys., tab.
Twórcy
  • IEEE Life Fellow, Distinguished Professor at the School of Electrical Eng. and Comp. Science, Louisiana State Univ., 824 Louray Dr., Baton Rouge, USA, LA 70808
Bibliografia
  • [1] Steinmetz, Ch.P., Theory and calculation of electrical apparatur, McGraw-Hill Book Comp., New York, 1917.
  • [2] Balabanian, N., Network Synthesis, Prentice-Hall, Englewood Cliffs, New York, 1958.
  • [3] Shepherd, W. Zakikhani, P., Suggested definition of reactive power for nonsinusoidal systems, Proc. IEE, Vol. 119, No. 9, pp. 1361-1362, 1972.
  • [4] Steeper, D.E., Stratford, R.P. Reactive compensation and harmonic suppression for industrial power systems using thyristor converters", IEEE Trans. on IA, Vol. 12, No. 3, pp. 232-254, 1976.
  • [5] International Electrotechnical Commission, (1979), Techn. Com-mittee No. 25, Working Group 7, Report: Reactive power and distortion power, Doc. No. 25, 113 (Secr.).
  • [6] Kusters, N.L., Moore, W.J.M., On the definition of reactive power under nonsinusoidal conditions, IEEE Trans. Power Appl. Syst., Vol. PAS-99, No. 3, pp. 1845-1854, 1980.
  • [7] Czarnecki, L.S., Minimization of distortion power of nonsinusoidal source applied to linear loads, Proc. IEE, Vol. 128, Pt. C, No. 4, pp. 208-210, 1981.
  • [8] Czarnecki, L.S., Additional discussion to “Reactive power under nonsinusoidal conditions", IEEE Trans. on Power and Systems, Vol. PAS-102, No. 4, pp. 1023-1024, 1983.
  • [9] Akagi, at all., Instantaneous reactive power compensator compri-sing switching devices without energy storage components, IEEE Trans. on Ind. Appl., IA-20, No. 3, pp. 625- 630, 1984.
  • [10] Czarnecki, L.S., Considerations on the reactive power in nonsinusoidal situations, IEEE on Instr. Meas., Vol. IM-34, No. 3, pp. 399-404, 1984.
  • [11] Czarnecki, L.S., Comments on the Kusters and Moore’s power definitions in circuits with nonsinusoidal waveforms (in Polish), Rozprawy Elektrotechn., Tom XXX, Z.3-4, pp. 1089-1099, 1984.
  • [12] Czarnecki, L.S., Minimization of reactive power in nonsinusoidal situation, IEEE Trans. on IM., Vol. IM-36, No. 1, pp. 18-22, 1987.
  • [13] Czarnecki, L.S., Reactive and unbalanced currents compensation in three-phase circuits under nonsinusoidal conditions, IEEE Trans. IM, IM-38, No. 3, pp. 754-459, 1989.
  • [14] Czarnecki, L.S., Time-domain approach to the reactive current minimization in nonsinusoidal situations, IEEE Trans. on Instr. Meas., Vol. IM-39, No. 5, pp. 698-703, 1990.
  • [15] Czarnecki, L.S., Scattered and reactive current, voltage, and power in circuits with nonsinusoidal waveforms and their compensation, IEEE Trans.on IM, Vol. 40, No. 3, pp. 563-567, 1991.
  • [16] Czarnecki, L.S., Reactive minimization of unbalanced currents in three-phase asymmetrical circuits with nonsinusoidal voltage, IEE Proc. Pt. B, Vol. 139, No. 4, pp. 347-354, 1992.
  • [17] Czarnecki, L.S., Two algorithms of the fundamental harmonic complex RMS value calculation, Archiv fur Elektrotechnik, (75), pp. 163-168, 1992. PRZEGLĄD ELEKTROTECHNICZNY, ISSN 0033-2097, R. 96 NR 4/2020 11
  • [18] Czarnecki, L.S., Minimization of unbalanced and reactive currents in three-phase asymmetrical circuits with nonsinusoidal voltage, Proc. IEE, Vol. 139, Pt. B, No. 4, pp. 347-354, 1992.
  • [19] Czarnecki, L.S., Power factor improvement of three-phase unba-lanced loads with nonsinusoidal voltage, European Trans. on Elect. Power Syst., ETEP, Vol. 3, No. 1, pp. 67-74, 1993.
  • [20] Czarnecki, L.S., Supply and loading quality improvement in sinu-soidal power systems with unbalanced loads supplied with asym-metrical voltage, Arch. fur Elektrotechnik, 77, pp. 69-177, 1994.
  • [21] Czarnecki, L.S. Hsu, M.S., Thyristor controlled susceptances for balancing compensators operated under nonsinusoidal condi-tions, Proc. IEE, B, EPA., Vol. 141, No. 4, pp. 177-185, 1994.
  • [22] Czarnecki, L.S., A combined time-domain and frequencydomain approach to hybrid compensation in unbalanced nonsinusoidal systems, European Trans. on Electric Power, ETEP, Vol. 4, No. 6, pp. 477-484, 1994.
  • [23] Czarnecki, L.S., Dynamic, power quality oriented approach to theory and compensation of asymmetrical systems under nonsi-nusoidal conditions, European Trans. on Electric Power, ETEP, Vol. 5, pp. 347-358, 1994.
  • [24] Czarnecki, L.S., Hsu, S.M., Chen, G., Adaptive balancing compensator, IEEE Trans. on Pow. Del., Vol. 10, No. 3, pp. 1663 - 1669, 1995.
  • [25] Bonner, J.A. at all., Selecting ratings for capacitors and reactors in applications involving multiple single-tuned filters, IEEE Trans. on Pow. Del., Vol.10, pp. 547-555, 1995.
  • [26] Czarnecki, L.S., Power theory of electrical circuits with quasiperiodic waveforms of voltages and currents, Europ. Trans. on Elect. Power, ETEP, Vol. 6, No. 5, pp. 321-328, 1996.
  • [27] Czarnecki, L.S., Chen, G., Staroszczyk, Z., Application of running quantities for control of adaptive hybrid compensator, Europ. Trans. on Elect. Power, ETEP, Vol. 6, No. 5, pp. 337- 344, 1996.
  • [28] Czarnecki, L.S., Budeanu and Fryze: two frameworks for interpreting power properties of circuits with nonsinusoidal voltages and currents, Archiv fur Elektrotechn., 81, No. 2, pp. 5-15, 1997.
  • [29] Hsu, S.M. Czarnecki, L.S., Adaptive blocking compensator, IEEE Trans. on Pow. Del., Vol. 18, No. 3, pp. 895-902, 2003.
  • [30] Tenti, P., Mattavelli, P., A time-domain approach to power terms definitions under nonsinusoidal conditions, 6th Int. Workshop on Power Definitions under Nonsinusoidal Conditions, Milano, 2003.
  • [31] Czarnecki, L.S., Ginn, H.L., Effects of damping on the performance of resonant harmonic filters, IEEE Trans. on Power Deliv., Vol. 19, pp. 846-853, 2004.
  • [32] Czarnecki, L.S., Ginn, H.L., The effect of the design method on the efficiency of resonant harmonic filters, IEEE Trans. on Power Delivery, Vol. 20, No. 1, pp. 286-291, 2005.
  • [33] Ginn, H.L., Chen, G., Switching compensator control strategy based on CPC power theory, Przegląd Elektrotechniczny, Vol. 84, No. 6, pp. 23-27, 2008.
  • [34] Czarnecki, L.S., Effect of supply voltage harmonics on IRPbased switching compensator control, IEEE Trans. on Power Electro-nics, Vol. 24, No. 2, pp. 483-488, 2009.
  • [35] Czarnecki, L.S, Pearce, S.E., Compensation objectives and CPC - based generation of reference signals for shunt switching com-pensator control, IET, Pow. Elect., Vol. 2, No. 1, pp. 33-41, 2009.
  • [36] Akagi, H., at all., Compensation algorithms based on the p-q and CPC theories for switching compensators in micro-grids, Proc. of COBEP Power Electronics Conf., Brazilian DOI: 10.1109/ COCEP.2009.5347593, pp. 32-40, 2009.
  • [37] Czarnecki, L.S., Effect of supply voltage asymmetry on IRP p-q - based switching compensator control, IET Proc. on Power Elec-tronics, Vol. 3, No. 1, pp. 11-17, 2010.
  • [38] Popescu, M., Bitoleanu, A., Suru, V., Currents’ Physical Compo-nents theory implementation in shunt active power filtering for unbalanced loads, International School on Nonsinusoidal Cur-rents and Compensation, ISNCC, Dig. Obj. Ident.: 10.1109 /ISNCC.2013. 6604447, 2013.
  • [39] Czarnecki, L.S., Haley, P.H., Currents’ Physical Components - CPC - in four-wire systems with nonsinusoidal symmetrical voltage, Przegląd Elektrotechn., R.91, No. 6, pp. 48-53, 2015.
  • [40] Czarnecki, L.S., Haley, P.H., Unbalanced power in four-wire sys-tems and its reactive compensation, IEEE Trans. on Pow. Del., Vol. 30, No. 1, pp. 53-63, 2015.
  • [41] Czarnecki, L.S., Comparison of the Conservative Power Theory (CPT) with Budeanu’s power theory, Annals of the University of Craiova, 2016.
  • [42] Czarnecki, L.S., Bhattarai, P.D. A method of calculation of LC parameters of balancing compensators for AC arc furnaces, IEEE Trans. on Pow. Del., Vol. 32, No. 2, pp. 688-695, 2017.
  • [43] Czarnecki, L.S., Critical comments on the Conservative Power Theory (CPT), Przegląd Elektrotechniczny, R3, No. 1, pp. 268-274, 2017.
  • [44] Czarnecki, L.S., A Key Note: Degradation of the energy transfer effectiveness described in terms of CPC-based PT, Intern. Conf. on Energy Science and Electr. Eng., (ICESEE), Budapest, 2017.
  • [45] Czarnecki, L.S., Ezeonwumelu, I.L., Considerations on direct bal-ancing of ultra-high power AC arc furnaces in uneasy state", IEEE Int. Conf. on Environment and Electr. Eng. (EEEIC), 2018.
  • [46] Czarnecki, L.S., Currents’ Physical Components (CPC) - based Power Theory. A Review, Part I: Power properties of electrical circuits and systems, Przegląd Elektrotechniczny, ISSN 0033-2097, R. 95, Nr. 95, pp. 1-11, 2019.
  • [47] Czarnecki, L.S., CPC - based reactive balancing of linear loads in four-wire supply systems with nonsinusoidal voltage, Przegląd Elektrotechniczny, R. 95, Nr. 95, pp. 1-8, 2019.
  • [48] Czarnecki, L.S., Bhattarai, P.D., CPC based reactive compensa-tion of linear loads supplied with asymmetrical nonsinusoidal vol-tage, Annals Univ. of Craiova, Vol. 42, No. 10, pp. 1-9, 2019.
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-29834fa0-4c0a-4060-a05c-47d2e59a7e95
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