Volume- 10
Issue- 4
Year- 2022
DOI: 10.55524/ijircst.2022.10.4.6 |
DOI URL: https://doi.org/10.55524/ijircst.2022.10.4.6
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This is an Open Access article distributed under the terms of the Creative Commons Attribution License (CC BY 4.0) (http://creativecommons.org/licenses/by/4.0)
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Ifrah Bashir , Dr. Satish Saini
Since its inception in the late 1800s, the electrical infrastructure has only grown throughout the previous century. The demand for and need for this infrastructure will increase as the world's reliance on electrical energy grows. This puts a burden on the present infrastructure, demanding frequent equipment improvements. With the fast adoption of electric vehicles, for example, power lines that were previously suitable for family and commercial loads will be stretched to their limits, and an upgrade may not be a possibility. In this case, microgrids, or localized generation and consumption, are a superior option. However, because to their dispersed nature, controlling and coordinating the generating sources is exceedingly challenging. To address this problem, an alternate microgrid architecture with control localized to individual sources is proposed. This is the essence of microgrid distributed control. This research describes and evaluates a micro-grid architecture that comprises many, independent sources connected by a shared DC bus, as well as built-in battery storage, power monitoring, and protection systems.
[1] U.S. Energy Information Administration. Energy Information Administration. International Energy Outlook 2016; U.S. Energy Information Administration: Washington, DC, USA, 2016; Volume 484, ISBN 2025866135.
[2] International Energy Agency. World Energy Investment Outlook; International Energy Agency: Paris, France, 2014; Volume 23, p. 329.
[3] REN21. Renewables 2018 Global Status Report; REN21 Publications: Paris, France, 2018; ISBN 9783981891133
[4] Aris L. Dimeas, Nikos D. Hatziargyriou, “Operation of a Multi-agent System for Microgrid Control”, Power Systems, IEEE Transaction on, vol. 20, no. 3, pp. 1447-1455, 2005.
[5] Palak Jain, Satish. J. Ranade, “Capacity Discovery in Customer-Driven Microgrids,” Power Symposium, Proc. of the 41th Annual North American, Mississippi State University, Oct. 2009.
[6] M. Pipattanasomporn, H. Feroze, S. Rahman, “Multi-Agent systems in a distributed smart grid: design and implementation,” Power Systems Conference and Exposition, Seattle, WA, March 2009, pp. 1-8.
[7] J. Oyarzabal, J. Jimeno, J. Ruela et al., “Agent-based Microgrid Management System,” Future Power Systems, International Conference on, Amsterdam, Nov. 2005, pp. 1-6.
[8]. CIGRÉ 635—Microgrids 1 Engineering, Economics, & Experience; WG C6.22; CIGRÉ: Paris, France, 2015; ISBN 9782858733385.
[9]. Soshinskaya, M.; Crijns-Graus,W.H.J.; Guerrero, J.M.; Vasquez, J.C. Microgrids: Experiences, barriers and success factors. Renew. Sustain. Energy Rev. 2014, 40, 659–672.
[10]. Parhizi, S.; Lotfi, H.; Khodaei, A.; Bahramirad, S. State of the art in research on microgrids: A review. IEEE Access 2015, 3, 890–925. [CrossRef]
M. Tech Scholar, Department of Electrical Engineering, RIMT University, Mandi Gobingarh, Punjab, India
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