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Techno-economic feasibility and size optimisation of an off-grid hybrid system for supplying electricity and thermal loads

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  • Das, Barun K.
  • Tushar, Mohammad Shahed H.K.
  • Zaman, Forhad

Abstract

In this article, cost-effective hybrid solutions while meeting the electric and thermal loads in five different climate zones in Australia are investigated. This study considers the excess electricity (EE, via thermal load controller-TLC) utilisation for the first time combined with recovered waste heat to satisfy the thermal load demand while the system is optimised using HOMER software. The micro gas turbine (MGT), diesel generator (DG), and fuel cell (FC), used as supplemental prime movers, along with the PV/Wind/Li-ion, are compared. This article also compares the hybrid energy system (HES) with power only and using EE and recovered waste heat individually and a combination of both to satisfy the thermal demand. Results indicate that the PV/Wind/MGT/Li-ion-based hybrid options have a lower Cost of Energy (COE, $/kWh) in all areas with the lowest in Tasmania (0.140$/kWh). Additionally, Queensland has higher COE (0.178$/kWh) for the same hybrid options because of the lower solar irradiation and wind velocity. The FC-based hybrid options have higher COE and net present cost (NPC) compared to the DG- and MGT-based options. Utilising both EE and recovered waste heat for supplying thermal demand could lead to lower the components capacity – thus lowering the NPC and reducing the environmental emissions.

Suggested Citation

  • Das, Barun K. & Tushar, Mohammad Shahed H.K. & Zaman, Forhad, 2021. "Techno-economic feasibility and size optimisation of an off-grid hybrid system for supplying electricity and thermal loads," Energy, Elsevier, vol. 215(PA).
  • Handle: RePEc:eee:energy:v:215:y:2021:i:pa:s0360544220322489
    DOI: 10.1016/j.energy.2020.119141
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    3. Jurasz, Jakub & Guezgouz, Mohammed & Campana, Pietro E. & Kies, Alexander, 2022. "On the impact of load profile data on the optimization results of off-grid energy systems," Renewable and Sustainable Energy Reviews, Elsevier, vol. 159(C).
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    5. Vaziri Rad, Mohammad Amin & Kasaeian, Alibakhsh & Niu, Xiaofeng & Zhang, Kai & Mahian, Omid, 2023. "Excess electricity problem in off-grid hybrid renewable energy systems: A comprehensive review from challenges to prevalent solutions," Renewable Energy, Elsevier, vol. 212(C), pages 538-560.
    6. Das, Barun K. & Al-Abdeli, Yasir M. & Kothapalli, Ganesh, 2021. "Integrating renewables into stand-alone hybrid systems meeting electric, heating, and cooling loads: A case study," Renewable Energy, Elsevier, vol. 180(C), pages 1222-1236.
    7. Tamal Chowdhury & Samiul Hasan & Hemal Chowdhury & Abul Hasnat & Ahmad Rashedi & M. R. M. Asyraf & Mohamad Zaki Hassan & Sadiq M. Sait, 2022. "Sizing of an Island Standalone Hybrid System Considering Economic and Environmental Parameters: A Case Study," Energies, MDPI, vol. 15(16), pages 1-22, August.

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