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Warianty tytułu
System zarządzania energią elektryczną w obiektach o podwójnej nieprzewidywalności
Języki publikacji
Abstrakty
This paper presents the concept of electrical energy management system in objects with double unpredictability. The system has been designed based on standard building management modules in LCN technology. A one year simulation conducted using MATLAB software indicates the possibility of a 12%-15% improvement in energy efficiency in objects and a decrease in the cost of purchasing energy from power grid by 14%- 15%. The proposed system has been implemented in HMS/BMS laboratory in the Department of Electrical Apparatus at Lodz University of Technology.
W artykule przedstawiono koncepcję systemu zarządzania energią elektryczną w obiektach o podwójnej nieprzewidywalności. Realizacja proponowanego systemu została wykonana na standardowych modułach systemu zarządzania budynkiem opartego na technologii LCN. Symulacja w pakiecie MATLAB rocznej pracy systemu wskazuje na możliwość poprawy efektywności energetycznej obiektu o 12-15% oraz na zmniejszenie kosztów zakupu energii z sieci w ciągu roku o 14-15%. Zaprezentowany system został wdrożony w laboratorium HMS/BMS w Katedrze Aparatów Elektrycznych Politechniki Łódzkiej.
Wydawca
Czasopismo
Rocznik
Tom
Strony
191--196
Opis fizyczny
Bibliogr. 24 poz., rys., tab., wykr.
Twórcy
autor
- Lodz University of Technology, Department of Electrical Apparatus, ul. Stefanowskiego 18/22, 90-924 Łódź, Poland
autor
- Lodz University of Technology, Department of Electrical Apparatus, ul. Stefanowskiego 18/22, 90-924 Łódź, Poland
Bibliografia
- [1] Bartosik M. Crisis of world's primary energy supply - fiction or reality? Przeglad Elektrotechniczny 2008, No. 2, 15-24 (in Polish)
- [2] Perez-Lombard L, Ortiz J, Pout C., A review on buildings energy consumption information. Energy and Buildings,40 (2008), 394-398
- [3] Costa A, Keane M, Torrens I. Corry E., Building operation and energy performance: Monitoring, analysis and optimisation toolkit. Appl Energy (2013), No. 101, 310-316
- [4] Li X, Bowers C, Schnier T., Classification of Energy Consumption in Buildings with Outlier Detection. IEEE Trans. Industrial Electron, (2009), No. 56, 1-6
- [5] Borkowski P, Pawlowski M, Makowiecki T. Economical Aspects of Building Management Systems Implementation. Proc. IEEE PES Trondheim PowerTech (2011), 1-6
- [6] Borkowski P, Pawlowski M., Home/Building Management Systems (HMS/BMS) to Protect Environment by Control Modern Lighting Installations. Proc International Proceedings of Chemical, Biological & Environmental Engineering (2011), No. 23, 141-145
- [7] Demirbas S, Demirtas M, Sefa I, Colak I., Building of W&S energy system. Proc. Internat. Symposium on Power Electronics, Electrical Drives, Automation and Motion (2008), 1466-1469
- [8] Zhenhua J, Rahimi-Eichi H., Design, modeling and simulation of a green building energy system. Proc. Power & Energy Society General Meeting (2009), 1-7
- [9] Nema P, Nemab RK, Rangnekar S., A current and future state of art development of hybrid energy system using wind and PV-solar: A review. Renewable and Sustainable Energy Reviews (2009), No. 13, 2096–2103
- [10] Finn P, O’Connell M, Fitzpatrick C., Demand side management of a domestic dishwasher: Wind energy gains, financial savings and peak-time load reduction. Appl Energy (2013), No. 101, 678-685
- [11] Hamrouni N, Jraidi M, Cherif A., New control strategy for 2-stage grid-connected photovoltaic power system. Renewable Energy (2008), No. 33, 2212–21
- [12] Xiaohong Guan, Zhanbo Xu, Qing-Shan Jia., Energy-Efficient Buildings Facilitated by Microgrid. IEEE Trans. Smart Grid 3 (2010), No. 1, 243-252
- [13] Pawlowski M. Energy-Efficient, Intelligent Communal Installations With Energy Storages. Ph.D. dissertation, Dept. Elec. Apparatus, Lodz Univ. of Tech., (2012) (in Polish).
- [14] Narasimhan S, McIntyre D, Wolff F, Zhou Y, Weyer D, Bhunia S., A supply-demand model based scalable energy management system for improved energy utilization efficiency. Proc. International Green Computing Conf. (2010), 97-105
- [15] Kadar P. Storage optimization in a liberalized energy market. Proc. 7th International Symposium on Applied Machine Intelligence and Informatics (2009), 85-88
- [16] Onar OC, Uzunoglu M, Alam MS., Dynamic modeling, design and simulation of a wind/fuel cell/ultra-capacitor-based hybrid power generation system. Journal of Power Sources (2006), No. 161, 707-722
- [17] Marinakis V, Doukas H, Karakosta C, Psarras J., An integrated system for buildings’ energy-efficient automation: Application in the tertiary sector. Appl Energy (2013), No. 101, 6-14
- [18] Moura P S, Aníbal T. de Almeida., The role of demand-side management in the grid integration of wind power. Appl Energy (2010), No. 87, 2581-2588
- [19] Stadler M, Kloess M, Groissböck M, Cardoso G, Sharma R, Bozchalui MC, Marnay C., Electric storage in California’s commercial buildings. Appl Energy (2013), No. 104, 711-722
- [20] Onar OC, Uzunoglua M, Alam MS., Modeling, control and simulation of an autonomous wind turbine/photovoltaic/fuel cell/ultra-capacitor hybrid power system. Journal of Power Sources 185(2008), No. 2, 1273-1283
- [21] Chen SX, Gooi HB., Scheduling of energy storage in a grid-connected PV/battery system via SIMPLORER. Proc. IEEE TENCON Region 10 Conf. (2009), 1-5
- [22] Saito N, Niimura T, Koyanagi K, Yokoyama R. Trade-off analysis of autonomous micro grid sizing with PV, diesel, and battery storage. Proc. Power & Energy Society General Meeting (2009), 1-6
- [23] Borkowski P, Pawlowski M., Potential of electrical energy savings by communal users. Rynek Energii (2012), No. 1, 101-106 (in Polish)
- [24] Zhao P, Suryanarayanan S, Simões MG. An Energy Management System for Building Structures Using a Multi-Agent Decision-Making Control Methodology. Proc. IEEE Industry Applications Society Annual Meeting (2010), 1-8
Typ dokumentu
Bibliografia
Identyfikator YADDA
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