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Multifunctional Current Reference Generation Strategy for Grid-tied Power Electronic Converter

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Identyfikatory
Warianty tytułu
PL
Wielofunkcyjne prądowe źródło odniesienia do sieciowego konwertera mocy
Języki publikacji
EN
Abstrakty
EN
In this work the functionalities of Power Electronic Converters (PEC) used as grid interface device for distributed generation sources are extended to deal with Power Quality (PQ) issues. It is proposed an alternative strategy to obtain current references based on the Conservative Power Theory (CPT). The proposed strategy contributes to the full exploitation of the PEC power capacity, allowing the PEC to act as a multifunctional device performing simultaneously selective compensation of PQ issues and power injection into the utility grid.
PL
Elektroniczny konwerter mocy PEC używany jako interfejs rozproszonych źródeł energii został poszerzony o możliwości poprawy jakości energii. Prądowe źródło odniesienia bazuje na Teorii Zachowania Mocy CPT.
Rocznik
Strony
142--148
Opis fizyczny
Bibliogr. 25 poz., rys., tab., wykr.
Twórcy
autor
  • Federal University of Technology - Paraná, Group of Electronic Engineering, Via Rosalina Maria dos Santos, 1233, Zip: 87301-899, Campo Mourão, PR, Brazil
  • Univ Estadual Paulista (UNESP), Campus of Sorocaba, Group of Automation and Integrated Systems, (GASI), Av. Três de Março 511, Zip: 18087- 180, Sorocaba – SP – Brazil
  • University of Campinas, School of Electrical and Computer Engineering, Campinas, Brazil
Bibliografia
  • [1] Carnieletto, R.; Suryanarayanan, S.; Simoes, M.G.; Farret, F.A., “A Multifunctional Single-Phase Voltage Source Inverter in Perspective of the Smart Grid Initiative,” Industry Applications Society Annual Meeting, 2009. IAS 2009. IEEE, vol., no., pp.1- 7, Oct. 2009.
  • [2] Singh, M.; Khadkikar, V.; Chandra, A.; Varma, R.K., “Grid Interconnection of Renewable Energy Sources at the Distribution Level With Power-Quality Improvement Features,” Power Delivery, IEEE Transactions on, vol.26, no.1, pp.307-315, Jan. 2011.
  • [3] Machado, R.Q.; Buso, S.; Pomilio, J.A.; Marafao, F.P., “Threephase to single-phase direct connection rural cogeneration systems,” Applied Power Electronics Conference and Exposition, 2004. APEC '04. Nineteenth Annual IEEE, vol.3, no., pp. 1547- 1553 Vol.3, 2004.
  • [4] Piasecki S.; Jasiński, M.; Rafał, K.; Korzeniewski, M., Milicua, A., Higher harmonics compensation in grid-connected PWM converters for renewable energy interface and active filtering, Przeglad Elektrotechniczny, 87 (2011), nr 6, 85-90.
  • [5] Si-Hun Jo; SeoEun Son; Jung-Wook Park, “On Improving Distortion Power Quality Index in Distributed Power Grids,” Smart Grid, IEEE Transactions on, vol.4, no.1, pp.586-595, March 2013.
  • [6] Von Appen, J.; Stetz, T.; Braun, M.; Schmiegel, A., “Local Voltage Control Strategies for PV Storage Systems in Distribution Grids,” Smart Grid, IEEE Transactions on, vol.5, no.2, pp.1002-1009, March 2014.
  • [7] Munir, S.; Yun Wei Li, “Residential Distribution System Harmonic Compensation Using PV Interfacing Inverter,” Smart Grid, IEEE Transactions on, vol.4, no.2, pp.816-827, June 2013.
  • [8] Bin Gu; Dominic, J.; Jih-Sheng Lai; Chien-Liang Chen; LaBella, T.; Baifeng Chen, “High Reliability and Efficiency Single-Phase Transformerless Inverter for Grid-Connected Photovoltaic Systems,” Power Electronics, IEEE Transactions on, vol.28, no.5, pp.2235-2245, May 2013.
  • [9] Alajmi, B.N.; Ahmed, K.H.; Adam, G.P.; Williams, B.W., “Single-Phase Single-Stage Transformer less Grid-Connected PV System,” Power Electronics, IEEE Transactions on, vol.28, no.6, pp.2664-2676, June 2013.
  • [10] Illindala, M.; Venkataramanan, G., “Frequency/Sequence Selective Filters for Power Quality Improvement in a Microgrid,” Smart Grid, IEEE Transactions on, vol.3, no.4, pp.2039-2047, Dec. 2012.
  • [11] Watanabe, E.H., Alfonso, J.L., Pinto, J.G., Monteiro, L.F.C., Aredes, M., Akagi, H. “Instantaneous p-q power theory for control of compensators in micro-grids,” Przeglad Elektrotechniczny, vol. 86, no. 6, pp. 1–10, 2010.
  • [12] Bitoleanu A. and Popescu M., How The p-q theory and Compensating Current Calculation for Shunt Active Power Filters: Theoretical Aspects and Practical Implementation, Przeglad Elektrotechniczny, v. 89, no. 6, pp. 11-16, 2013.
  • [13] Tenti, P.; Paredes, H.K.M.; Mattavelli, P., “Conservative Power Theory, a Framework to Approach Control and Accountability Issues in Smart Microgrids,” Power Electronics, IEEE Transactions on, vol.26, no.3, pp.664-673, March 2011.
  • [14] Paredes, H.K.M.; da Silva, L.C.P.; Brandão, D.I.; Marafão, F.P., “Possible Shunt Compensation Strategies Based on Conservative Power Theory”, Przeglad Elektrotechniczny, v. 87, p. 34-39, 2011.
  • [15] Shen, G.; Xu, D.; Cao, L.; Zhu, X., “An Improved Control Strategy for Grid-Connected Voltage Source Inverters With an LCL Filter,” Power Electronics, IEEE Transactions on, vol.23, no.4, pp.1899-1906, July 2008.
  • [16] Marafão, F.P, Souza, W.; Liberado, E.; , Silva, L.; Paredes, H, Load Analyser using Conservative Power Theory, Przeglad Elektrotechniczny, 89 (2013), nr 12, 1-6.
  • [17] P. Mattavelli and S. Buso. “Digital Control in Power Electronics”. 1st ed. Morgan & Claypool Publishers.
  • [18] Khajehoddin, S.A.; Karimi-Ghartemani, M.; Jain, P.K.; Bakhshai, A., “DC-Bus Design and Control for a Single-Phase Grid-Connected Renewable Converter With a Small Energy Storage Component,” Power Electronics, IEEE Transactions on, vol.28, no.7, pp.3245-3254, July 2013.
  • [19] Curtri, R.; Matakas, L., “Reference currents determination techniques for load unbalance compensation”, 7th Brazilian Conference on Power Electronics, 2003.
  • [20] Yepes, A.G.; Freijedo, F.D.; Lopez, O.; Doval-Gandoy, J., “Analysis and Design of Resonant Current Controllers for Voltage-Source Converters by Means of Nyquist Diagrams and Sensitivity Function,” Industrial Electronics, IEEE Transactions on, vol.58, no.11, pp.5231-5250, Nov. 2011.
  • [21] Hasanzadeh, A.; Onar, O.C.; Mokhtari, H.; Khaligh, A., “A Proportional-Resonant Controller-Based Wireless Control Strategy With a Reduced Number of Sensors for Parallel- Operated UPSs,” Power Delivery, IEEE Transactions on,vol.25, no.1, pp.468-478, Jan. 2010.
  • [22] Araujo, S.V.; Zacharias, P.; Mallwitz, R., “Highly Efficient Single-Phase Transformerless Inverters for Grid-Connected Photovoltaic Systems,” Industrial Electronics, IEEE Transactions on, vol.57, no.9, pp.3118-3128, Sept. 2010.
  • [23] Riming Shao; Kaye, M.; Liuchen Chang, “Advanced building blocks of power converters for renewable energy based distributed generators,” Power Electronics and ECCE Asia (ICPE & ECCE), 2011 IEEE 8th International Conference on, vol., no., pp.2168-2174, May 30 2011-June 3 2011.
  • [24] Buticchi, G.; Lorenzani, E.; Franceschini, G., “A Five-Level Single-Phase Grid-Connected Converter for Renewable Distributed Systems,” Industrial Electronics, IEEE Transactions on, vol.60, no.3, pp.906-918, March 2013.
  • [25] Bojoi, R.; Limongi, L.R.; Roiu, D.; Tenconi, A., “Enhanced Power Quality Control Strategy for Single-Phase Inverters in Distributed Generation Systems,” Power Electronics, IEEE Transactions on, vol.26, no.3, pp.798-806, March 2011.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-7e436aa4-f635-4664-b4d8-2ce6ae2a4913
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