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Comprehensive exergetic performance assessment and techno-financial optimization of off-grid hybrid renewable configurations with various dispatch strategies and solar tracking systems

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  • Mousavi, Seyed Ali
  • Toopshekan, Ashkan
  • Mehrpooya, Mehdi
  • Delpisheh, Mostafa

Abstract

The suitable selection of a dispatch strategy in a hybrid renewable configuration is essential in determining optimum scenarios. In this study, to determine the most reliable and economical way to meet the electricity demand of remote areas, an off-grid hybrid renewable configuration comprised of PV panels, wind turbines, a battery bank, and a biogas generator (as backup) is proposed. To this end, exergy and environmental analyses and techno-economic optimization are applied to four dispatch strategies including cycle charging, load following, combined dispatch, and HOMER predictive over a remote off-grid village located in South Khorasan province as a case study. The results of the exergy analysis signposted that for all dispatch modes, the highest share in overall exergy destruction was pertinent to PV modules, and accordingly, the inauguration of three solar tracking systems was examined. To investigate the cost-effectiveness of different configurations and dispatch strategies, a cost-effective index was defined and in all dispatch strategies, the highest belonged to the vertical tracker. On these grounds, the vertical tracking mode was the most cost-effective option to enhance the hybrid system's technical performance. The results indicated that upon forecasting the future load, the HOMER predictive dispatch strategy was performant in terms of employing the storage system and minimizing excess electricity, while the Combined Dispatch elicited the lowest rate of application and appropriate use of the battery. On the economic side, the cycle charging strategy had a cost of energy of 0.128 $/kWh and a net prest cost of $ 152258 and was found as the most affordable scenario with vertical tracking mode. Afterward, sensitivity analyses concerning the financial factors, exergetic parameters, and renewable resources were implemented for generalizing the findings of the investigation to other operating conditions. Eventually, the time series of electrical energy consumption and production, and the frequency of SOC for the battery bank for all dispatch strategies are explored.

Suggested Citation

  • Mousavi, Seyed Ali & Toopshekan, Ashkan & Mehrpooya, Mehdi & Delpisheh, Mostafa, 2023. "Comprehensive exergetic performance assessment and techno-financial optimization of off-grid hybrid renewable configurations with various dispatch strategies and solar tracking systems," Renewable Energy, Elsevier, vol. 210(C), pages 40-63.
  • Handle: RePEc:eee:renene:v:210:y:2023:i:c:p:40-63
    DOI: 10.1016/j.renene.2023.04.018
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    1. Kirim, Yavuz & Sadikoglu, Hasan & Melikoglu, Mehmet, 2022. "Technical and economic analysis of biogas and solar photovoltaic (PV) hybrid renewable energy system for dairy cattle barns," Renewable Energy, Elsevier, vol. 188(C), pages 873-889.
    2. Esmaeil Jadidi & Mohammad Hasan Khoshgoftar Manesh & Mostafa Delpisheh & Viviani Caroline Onishi, 2021. "Advanced Exergy, Exergoeconomic, and Exergoenvironmental Analyses of Integrated Solar-Assisted Gasification Cycle for Producing Power and Steam from Heavy Refinery Fuels," Energies, MDPI, vol. 14(24), pages 1-29, December.
    3. Rajbongshi, Rumi & Borgohain, Devashree & Mahapatra, Sadhan, 2017. "Optimization of PV-biomass-diesel and grid base hybrid energy systems for rural electrification by using HOMER," Energy, Elsevier, vol. 126(C), pages 461-474.
    4. Petrollese, Mario & Cocco, Daniele, 2020. "Techno-economic assessment of hybrid CSP-biogas power plants," Renewable Energy, Elsevier, vol. 155(C), pages 420-431.
    5. Mehdi Mehrpooya & Parimah Bahramian & Fathollah Pourfayaz & Hadi Katooli & Mostafa Delpisheh, 2021. "A novel hybrid liquefied natural gas process with absorption refrigeration integrated with molten carbonate fuel cell," International Journal of Low-Carbon Technologies, Oxford University Press, vol. 16(3), pages 956-976.
    6. Yilmaz, Saban & Dincer, Furkan, 2017. "Optimal design of hybrid PV-Diesel-Battery systems for isolated lands: A case study for Kilis, Turkey," Renewable and Sustainable Energy Reviews, Elsevier, vol. 77(C), pages 344-352.
    7. Ghorbani, Narges & Kasaeian, Alibakhsh & Toopshekan, Ashkan & Bahrami, Leyli & Maghami, Amin, 2018. "Optimizing a hybrid wind-PV-battery system using GA-PSO and MOPSO for reducing cost and increasing reliability," Energy, Elsevier, vol. 154(C), pages 581-591.
    8. Vaziri Rad, Mohammad Amin & Toopshekan, Ashkan & Rahdan, Parisa & Kasaeian, Alibakhsh & Mahian, Omid, 2020. "A comprehensive study of techno-economic and environmental features of different solar tracking systems for residential photovoltaic installations," Renewable and Sustainable Energy Reviews, Elsevier, vol. 129(C).
    9. Sanni, Shereefdeen Oladapo & Oricha, Joseph Yakubu & Oyewole, Taoheed Oluwafemi & Bawonda, Femi Ikotoni, 2021. "Analysis of backup power supply for unreliable grid using hybrid solar PV/diesel/biogas system," Energy, Elsevier, vol. 227(C).
    10. Mazzola, Simone & Vergara, Claudio & Astolfi, Marco & Li, Vivian & Perez-Arriaga, Ignacio & Macchi, Ennio, 2017. "Assessing the value of forecast-based dispatch in the operation of off-grid rural microgrids," Renewable Energy, Elsevier, vol. 108(C), pages 116-125.
    11. Rezzouk, H. & Mellit, A., 2015. "Feasibility study and sensitivity analysis of a stand-alone photovoltaic–diesel–battery hybrid energy system in the north of Algeria," Renewable and Sustainable Energy Reviews, Elsevier, vol. 43(C), pages 1134-1150.
    12. Fatin Ishraque, Md. & Shezan, Sk. A. & Ali, M.M. & Rashid, M.M., 2021. "Optimization of load dispatch strategies for an islanded microgrid connected with renewable energy sources," Applied Energy, Elsevier, vol. 292(C).
    13. Song, Guohui & Xiao, Jun & Zhao, Hao & Shen, Laihong, 2012. "A unified correlation for estimating specific chemical exergy of solid and liquid fuels," Energy, Elsevier, vol. 40(1), pages 164-173.
    14. Kim, Heetae & Baek, Seoin & Park, Eunil & Chang, Hyun Joon, 2014. "Optimal green energy management in Jeju, South Korea – On-grid and off-grid electrification," Renewable Energy, Elsevier, vol. 69(C), pages 123-133.
    15. Toopshekan, Ashkan & Yousefi, Hossein & Astaraei, Fatemeh Razi, 2020. "Technical, economic, and performance analysis of a hybrid energy system using a novel dispatch strategy," Energy, Elsevier, vol. 213(C).
    16. Razmjoo, A. & Gakenia Kaigutha, L. & Vaziri Rad, M.A. & Marzband, M. & Davarpanah, A. & Denai, M., 2021. "A Technical analysis investigating energy sustainability utilizing reliable renewable energy sources to reduce CO2 emissions in a high potential area," Renewable Energy, Elsevier, vol. 164(C), pages 46-57.
    17. Das, Barun K. & Zaman, Forhad, 2019. "Performance analysis of a PV/Diesel hybrid system for a remote area in Bangladesh: Effects of dispatch strategies, batteries, and generator selection," Energy, Elsevier, vol. 169(C), pages 263-276.
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