Power Dispatch Strategy for Interconnected Microgrids Based Hybrid Renewable Energy System

Marwa Grami

Abstract


This paper proposes a studied system made up of interconnected microgrids (MGs) in which each one includes a hybrid renewable energy system (HRES). The proposed power dispatch strategy ensures load satisfaction in each MG by maintaining the equilibrium between production and consumer demand powers via interactions among MGs and the utility grid. The purpose of this paper is to provide an adequate supply to the different MGs by adapting production to consumption according to the available hybrid power production. This is done  with the consideration of the dispatch of the power exchanged among MGs and the main grid. The cooperation between the multiples MGs ensures higher resilience and flexibility of the whole distribution system. The case study results are provided to show the feasibility of this proposed power dispatch strategy in the smart grid environment.


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References


M. L. Tuballa, and M. L. Abundo, “A review of the development of Smart Grid technologiesâ€, Renewable and Sustainable Energy Reviews, vol. 59, pp. 710-725, 2016.

K. Zhou, S. Yang, Z. Chen, and S. Ding, “Optimal load distribution model of microgrid in the smart grid environmentâ€, Renewable and Sustainable Energy Reviews, vol. 35, pp. 304-310, 2014.

Y. Yoldas, A. Önen, S. M. Muyeen, A. V. Vasilakos, and I. Alan, “Enhancing smart grid with microgrids: Challenges and opportunitiesâ€, Renewable and Sustainable Energy Reviews, vol. 72, pp. 205-214, 2017.

A. H. Fathima, and K. Palanisamy, “Optimization in microgrids with hybrid energy systems – A reviewâ€, Renewable and Sustainable Energy Reviews, vol. 45, pp. 431-446, 2015.

Q. Jiang, M. Xue, and G. Geng, “Energy management of microgrid in grid-connected and stand-alone modesâ€, IEEE Transactions On Power Systems, vol. 28, pp. 3380-3389, 2013.

L. Meng, E. R. Sanseverino, A. Luna, T. Dragicevic, J. C. Vasquez, and J. M. Guerrero, “Microgrid supervisory controllers and energy management systems: A literature reviewâ€, Renewable and Sustainable Energy Reviews, vol. 60, pp. 1263-1273, 2016.

Z. Li, and Y. Xu, “Optimal coordinated energy dispatch of a multi-energy microgrid in gridconnected and islanded modesâ€, Applied Energy, vol. 210, pp. 974-986, 2017.

Y. Zhang, N. Gatsis, and G. B. Giannakis, “Robust energy management for microgrids with high-penetration renewablesâ€, IEEE Transactions On Sustainable Energy, vol. 4, pp. 944-953, 2013.

T. C. Ou, and C. M. Hong, “Dynamic operation and control of microgrid hybrid power systemsâ€, Energy, vol. 66, pp. 314-323, 2014.

W. Shi, X. Xie, C.C. Chu, and R. Gadh, “Distributed Optimal Energy Management in Microgridsâ€, IEEE Transactions On Smart Grid, vol. 6, pp. 1137-1146, 2015.

S. Kirmani, M. Jamil, and I. Akhtar, “Bi-directional power control mechanism for a microgrid hybrid energy system with power quality enhancement capabilitiesâ€, International journal of renewable energy research, vol. 7, pp. 1962-1969, 2017.

L. H. Koh, P. Wang, F. H. Choo, K. J. Tseng, Z. Y. Gao, and H. B. Püttgen, “Operational Adequacy Studies of a PV-Based and Energy Storage Stand-Alone Microgridâ€, IEEE Transactions On Power Systems, vol. 30, pp. 892-900, 2015.

C. Wang, Y. Liu, X. Li, L. Guo, L. Qiao, and H. Lu, “Energy management system for stand-alone diesel-wind-biomass microgrid with energy storage systemâ€, Energy, vol. 97, pp. 90-104, 2016.

J. Pascual, J. Barricarte, P. Sanchis, and L. Marroyo, “Energy management strategy for a renewable-based residential microgrid with generation and demand forecastingâ€, Applied Energy, vol. 158, pp. 12-25, 2015.

A. Nadimi, and F. Adabi, “Optimized planning for hybrid microgrid in grid connected modeâ€, International journal of renewable energy research, vol. 6, pp. 494-503, 2016.

H. Kanchev, F. Colas, V. Lazarov, and B. Francois, “Emission reduction and economical optimization of an urban microgrid operation including dispatched PV-based active generatorsâ€, IEEE Transactions On Sustainable Energy, vol. 5, pp. 1397-1405, 2014.

M. Marzband, A. Sumper, A. R. Ãlvarez, J. L. D. García, and B. Tomoiaga, “Experimental evaluation of a real time energy management system for stand-alone microgrids in day-ahead marketsâ€, Applied Energy, vol. 106, pp. 365-376, 2013.

M. Marzband, M. Ghadimi, A. Sumper, and J. L. D. García, “Experimental validation of a real-time energy management system using multi-period gravitational search algorithm for microgrids in islanded modeâ€, Applied Energy, vol. 128, pp. 164-174, 2014.

B. Belvedere, M. Bianchi, A. Borghetti, C. A. Nucci, M. Paolone, and A. Peretto, “A microcontroller-based power management system for standalone microgrids with hybrid power supplyâ€, IEEE Transactions On Sustainable Energy, vol. 3, pp. 422-431, 2012.

S. Tan, J. X. Xu, and S. K. Panda, “Optimization of distribution network incorporating distributed generators: An integrated approachâ€, IEEE Transactions On Power Systems, vol. 28, pp. 2421-2432, 2013.

X. Lu, J. Wang, and L. Guo, “Using microgrids to enhance energy security and resilienceâ€, The Electrical Journal, vol. 29, pp. 8-15, 2016.

X. Fang, S. Ma, Q. Yang, and J. Zhang, “Cooperative energy dispatch for multiple autonomous microgrids with distributed renewable sources and storagesâ€, Energy, vol. 99, pp. 48-57, 2016.

M. Fathi, and H. Bevrani, “Statistical cooperative power dispatching in interconnected microgridsâ€, IEEE Transactions On Sustainable Energy, vol. 4, pp. 586-593, 2013.

D. Gregoratti, and J. Matamoros, “Distributed energy trading: The multiple-microgrid caseâ€, IEEE Transactions On Industrial Electrical, vol. 62, pp. 2551-2259, 2014.

Z. Wang, B. Chen, J. Wang, and J. Kim, “Decentralized energy management system for networked microgrids in grid-connected and islanded modesâ€, IEEE Transactions On Smart Grid, vol. 7, pp. 1097-1105, 2015.

H. Haddadian, and R. Noroozian, “Multi-microgrids approach for design and operation of future distribution networks based on novel technical indicesâ€, Applied Energy, vol. 185, pp. 650-663, 2017.

M. Rekik, A. Abdelkafi, and L. Krichen, “A micro-grid ensuring multi-objective control strategy of a power electrical system for quality improvementâ€, Energy, vol. 88, pp. 1-13, 2015.

S. Ruiz-Alvarez, J. Patino, A. Marquez, and J. Espinoza, “Optimal design for an electrical hybrid microgrid in colombia under fuel price variationâ€, International journal of renewable energy research, vol. 7, pp. 1535-1545, 2017.

S. Diaf, D. Diaf, M. Belhamel, and M. Haddadi, “A methodology for optimal sizing of autonomous hybrid PV/wind systemâ€, Energy Policy, vol. 35, pp. 5708-5718, 2017.

H. Belmili, M. Haddadi, S. Bacha, M.F. Almi, and M. Bendib, “Sizing stand-alone photovoltaic-wind hybrid system: Techno-economic analysis and optimizationâ€, Renewable and Sustainable Energy Reviews, vol. 30, pp. 821-832, 2014.

O. Tremblay, and L. Dessaint, “Experimental validation of a battery dynamic model for EV applicationsâ€, World Electric Vehicle, vol. 3, pp. 289-298, 2009.

H. Rahimi-Eichi, and M.Y. Chow, “Adaptive Parameter Identification and State-of-Charge Estimation of Lithium-Ion Batteriesâ€, IECON Conference, Montreal, pp. 4012-4017, 25-28 Oct, 2012.

T. Balamurugan, and S. Manoharan, “Optimal Power Flow Management Control for Grid Connected Photovoltaic/Wind turine/Diesel generator (GCPWD)

A. M. Kassem, and A. M. Yousef, “Robust control of an isolated hybrid wind–diesel power system using Linear Quadratic Gaussian approachâ€, International Journal of Electrical Power & Energy Systems, vol. 33, pp. 1092-1100, 2011.

M. S. Ismai, M. Moghavvemi, and T. M. I. Mahlia, “Techno-economic analysis of an optimized photovoltaic and diesel generator hybrid power system for remote houses in a tropical climateâ€, Energy Conversion and Management, vol. 69, pp. 163-173, 2013.




DOI (PDF): https://doi.org/10.20508/ijrer.v8i2.7467.g7408

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