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Optimal Design and Cost–Benefit Analysis of a Solar Photovoltaic Plant with Hybrid Energy Storage for Off-Grid Healthcare Facilities with High Refrigeration Loads

Author

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  • Obu Samson Showers

    (Electrical Engineering Department, University of Cape Town, Private Bag X3, Upper Campus, Rondebosch, Cape Town 7700, South Africa)

  • Sunetra Chowdhury

    (Electrical Engineering Department, University of Cape Town, Private Bag X3, Upper Campus, Rondebosch, Cape Town 7700, South Africa)

Abstract

This paper presents the optimal design and cost–benefit analysis of an off-grid solar photovoltaic system integrated with a hybrid energy storage system for a Category 3 rural healthcare facility in Elands Bay, South Africa. The optimal configuration, designed in Homer Pro, consists of a 16.1 kW solar PV array, 10 kW lithium-ion battery, 23 supercapacitor strings (2 modules per string), 50 kW fuel cell, 50 kW electrolyzer, 20 kg hydrogen tank, and 10.8 kW power converter. The daily energy consumption for the selected healthcare facility is 44.82 kWh, and peak demand is 9.352 kW. The off-grid system achieves 100% reliability (zero unmet load) and zero CO 2 emissions, compared to the 24,128 kg/year of CO 2 emissions produced by the diesel generator. Economically, it demonstrates strong competitiveness with a levelized cost of energy (LCOE) of ZAR24.35/kWh and a net present cost (NPC) of ZAR6.05 million. Sensitivity analysis reveals the potential for a further 20–40% reduction in LCOE by 2030 through anticipated declines in component costs. Hence, it is established that the proposed model is a reliable and viable option for off-grid rural healthcare facilities.

Suggested Citation

  • Obu Samson Showers & Sunetra Chowdhury, 2025. "Optimal Design and Cost–Benefit Analysis of a Solar Photovoltaic Plant with Hybrid Energy Storage for Off-Grid Healthcare Facilities with High Refrigeration Loads," Energies, MDPI, vol. 18(17), pages 1-27, August.
  • Handle: RePEc:gam:jeners:v:18:y:2025:i:17:p:4596-:d:1737573
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    References listed on IDEAS

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    1. Obu Samson Showers & Sunetra Chowdhury, 2024. "Enhancing Energy Supply Reliability for University Lecture Halls Using Photovoltaic-Battery Microgrids: A South African Case Study," Energies, MDPI, vol. 17(13), pages 1-26, June.
    2. Bilal, Mohd & Ahmad, Fareed & Mohammad, Arshad & Rizwan, Mohammad, 2025. "Techno-economic evaluation and sensitivity analysis of renewable energy based designing of plug-in electric vehicle load considering load following strategy," Applied Energy, Elsevier, vol. 377(PC).
    3. Diaf, S. & Diaf, D. & Belhamel, M. & Haddadi, M. & Louche, A., 2007. "A methodology for optimal sizing of autonomous hybrid PV/wind system," Energy Policy, Elsevier, vol. 35(11), pages 5708-5718, November.
    4. Lanre Olatomiwa & Ahmad A. Sadiq & Omowunmi Mary Longe & James G. Ambafi & Kufre Esenowo Jack & Toyeeb Adekunle Abd'azeez & Samuel Adeniyi, 2022. "An Overview of Energy Access Solutions for Rural Healthcare Facilities," Energies, MDPI, vol. 15(24), pages 1-23, December.
    5. Blessings Masuku, 2024. "Rethinking South Africa’s household energy poverty through the lens of off-grid energy transition," Development Southern Africa, Taylor & Francis Journals, vol. 41(3), pages 467-489, May.
    6. Piotr Gajewski & Krzysztof Pieńkowski, 2021. "Control of the Hybrid Renewable Energy System with Wind Turbine, Photovoltaic Panels and Battery Energy Storage," Energies, MDPI, vol. 14(6), pages 1-23, March.
    7. Ding, Liping & Zhang, Zumeng & Dai, Qiyao & Zhu, Yuxuan & Shi, Yin, 2023. "Alternative operational modes for Chinese PV poverty alleviation power stations: Economic impacts on stakeholders," Utilities Policy, Elsevier, vol. 82(C).
    8. Nicoleta Cristina Gaitan & Ioan Ungurean & Ghenadie Corotinschi & Costica Roman, 2023. "An Intelligent Energy Management System Solution for Multiple Renewable Energy Sources," Sustainability, MDPI, vol. 15(3), pages 1-13, January.
    9. Lennox Boateng & Paidamwoyo Mhangara, 2023. "A Comparative Assessment of Annual Solar Irradiance Trends between Mpumalanga and Northern Cape Province in South Africa Using PVGIS," Energies, MDPI, vol. 16(18), pages 1-16, September.
    10. Luta, Doudou N. & Raji, Atanda K., 2019. "Optimal sizing of hybrid fuel cell-supercapacitor storage system for off-grid renewable applications," Energy, Elsevier, vol. 166(C), pages 530-540.
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