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Fuel cell grid connected system with active power generation and reactive power compensation features

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
PL
Sieć z podłączonym ogniwem paliwowym z kompensacją mocy biernej i redukcją harmonicznych
Języki publikacji
EN
Abstrakty
EN
This article presents a control of a three-phase low voltage grid connected fuel cell system which participating in the improvement of the quality of energy at the connection point by ensuring the reactive energy compensation, the active power control and the harmonic filtering functionalities. A p-q theory based control has been developed to control the injected fuel cell active power and to allow the system to provide the reactive energy compensation function. The system is structured around a proton exchange membrane (PEM) fuel cell system and a three-phase voltage inverter.
PL
W artykule przedstawiono sterowanie trójfazową siecią z podłączonym ogniwem paliwowym z kompensacją mocy biernej i redukcją harmonicznych. Zastosowano ogniwo z protonową membraną wymienna PEM.
Rocznik
Strony
124--127
Opis fizyczny
Bibliogr. 24 poz., rys., tab.
Twórcy
  • LSTE Laboratory, Faculty of Science and Technology, University Mustapha Stambouli of Mascara, Algeria
Bibliografia
  • [1] Gielena D., Boshell F., Sayginb D., Bazilianc M.D., Wagner N., Gorini R., The role of renewable energy in the global energy transformation, Energy Strategy Reviews, 24 (2019), 38-50
  • [2] Møller K.T., Jensen T.R., Akiba E., Li H.W., Hydrogen - A sustainable energy carrier, Progress in Natural Science: Materials International, 27 (2017), No. 1, 34-40
  • [3] Wang B.C, Guo X.Q., Huang X.K, Wu W.Y, Flexible Control of Three-Phase Distributed Generation Systems for Voltage Rise Mitigation in Microgrid, Przegląd Elektrotechniczny, 88 (2012), nr 7b, 382-386
  • [4] Wang C., Nehrir M.H., Gao H., Control of PEM Fuel Cell Distributed Generation Systems, IEEE Transactions on Energy Conversion, 21(2006), No.2, 586-595
  • [5] Chen W., Han Y., Li Q., Liu Z., Peng F., Design of proton exchange membrane fuel cell grid-connected system based on resonant current controller, International Journal of Hydrogen Energy, 39 (2014), No. 26, 14402-14410
  • [6] Wu J.C, , Wu K.D., Jou H.L, Wu Z.H, Chang S.K, Novel power electronic interface for grid-connected fuel cell power generation system. Energy Conversion and Management, 71 (2013) 227-234
  • [7] Sundarabalan C.K., Puttagunta Y., Vignesh V., Fuel cell integrated unified power quality conditioner for voltage and current reparation in four-wire distribution grid, IET Smart Grid, 2 (2019), No. 1, 60-68
  • [8] Cao L., Loo K.H., Lai Y.M., Frequency-Adaptive Filtering of Low- Frequency Harmonic Current in Fuel Cell Power Conditioning Systems. IEEE Transactions on Power Electronics, 30 (2015), No. 4, 1966-1978
  • [9] Sun L., Wu G., Xue Y., Shen J., Li D., Lee K.Y., Coordinated Control Strategies for Fuel Cell Power Plant in a Microgrid, IEEE Transactions on Energy conversion, 33 (2018), No. 1, 1-9
  • [10] Li Q., Chen W., Liu Z., Zhou G., Ma L., Active control strategy based on vector-proportion integration controller for proton exchange membrane fuel cell grid-connected system. IET Renewable Power Generation, 9 (2015), No. 8, 991-999
  • [11] Zambri N.A., Mohamed A., Utilization of fuel cell energy source for distribution power generation: theory, modeling and review of research work, Przegląd Elektrotechniczny, 90 (2014), nr 5, 189-200
  • [12] Shireen W., Kulkarni R.A., Arefeen M., Analysis and minimization of input ripple current in PWM inverters for designing reliable fuel cell power systems, Journal of Power Sources, 156 (2006), No. 2, 448-454
  • [13] Boscaino V., Capponi G., Miceli R., Galluzzo G.R., Rizzo R., Comparison of models of fuel cells based on experimental data for the design of power electronics systems, IET Renewable Power Generation, 9 (2015), No. 6, 660-668
  • [14] Blaabjerg F., Chen Z., Kjaer S.B., Power electronics as efficient interface in dispersed power generation systems, IEEE Transactions on Power Electronics, 2004 (19), No. 5, 1184- 1194
  • [15] Inci M., Türksoy O., Review of fuel cells to grid interface: Configurations, technical challenges and trends, Journal of Cleaner Production, 213 (2019), 1353-1370
  • [16] Bicer Y., Dincer I., Aydin M., Preparation Maximizing performance of fuel cell using artificial neural network approach for smart grid applications, Energy, 116 (2016), 1205-1217
  • [17] Sakhare A., Davari A., Feliachi A., Fuzzy logic control of fuel cell for stand-alone and grid connection, Journal of Power Sources, 135 (2004), No. 1–2, 165-176.
  • [18] Qureshi M.B, Qamar S., Ali S., Khalid U., Recurrent neurofuzzy control of grid-interfaced solid oxide fuel cell system, International Journal of Systems Control and Communications, 9 (2018), No. 1, 31-52
  • [19] Yuan X.Z., Wang H., PEM Fuel Cell Fundamentals, In: Zhang J. (editor), PEM Fuel Cell Electrocatalysts and Catalyst Layers. Springer (2008), 1-87
  • [20] Mann R.F., Amphlett J.C., Hooper M.A.I., Jensen H.M., Peppley B.A., Roberge P.R., Development and application of a generalised steady-state electrochemical model for a PEM fuel cell, Journal of Power Sources, 86 (2000), No. 1–2, 173-180
  • [21] Fowler M.W, Mann R.F., Amphlett J.C, Peppley B.A., Roberge P.R., Incorporation of Voltage Degradation into a Generalised Steady State Electrochemical Model for a PEM Fuel Cell, Journal of Power Sources, 106 (2002), No. 1–2, 274–283
  • [22] Okada T., Xie G., Meeg M. Simulation for Water Management in Membranes for Polymer Electrolyte Fuel Cells, Electrochimica Acta, 43 (1998), No. 14–15, 2141–2155
  • [23] Corêa J.M., Farret F.A., Canha L.N., Simões M.G., An Electrochemical-Based Fuel Cell Model Suitable for Electrical Engineering Automation Approach, IEEE Transactions on Industrial Electronics , 51 (2004), No. 5, 1103–1112
  • [24] Sangwongwanich A., Abdelhakim A., Yang Y., Zhou K., Control of Single-Phase and Three-Phase DC/AC Converters, in: Blaabjerg F.(editor), Control of Power Electronic Converters and Systems, Elsevier (2018), 153–173
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-b1c111ca-9f40-4c52-8542-0fcd9736d305
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