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Floating Solar Photovoltaic: A Critical Review of Improvements in Thermal Competence, Cost-Effectiveness, and Hybrid System Integration

    Authors

    • Mohammed Alshekhly 1
    • Alanood A. Alsarayreh 2

    1 College of Engineering, Gulf University, Sanad 26489, Bahrain.

    2 Department of Chemical Engineering, Faculty of Engineering, Mutah University, P.O. Box 7, Al- Karak 61710 – Jordan.

,

Document Type : Review Article

10.63463/kjes1224
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Abstract

          This paper provides a critical review of the design, performance, and integration opportunities of Floating Photovoltaic (FPV) systems in accordance with the growing need sustainable and land-efficient renewable energy systems to overcome land-use constraints and enhance energy production through floating deployments. The methodology is based on the PRISMA principles and entails a systematic review of peer-reviewed articles published between 2020 and 2026, and the findings are categorized into three key themes: performance and efficiency analysis, technical and economic feasibility, and hybrid system integration. Key results show that FPV systems have a consistent and consistently better performance over ground-mounted PV, with a range of temperature reductions of 2-11oC and energy yield improvement between 2-28%, with such variability being attributed to the changing of local climatic conditions (tropical vs. temperate) as well as the system design (tilt angle, mounting height, and inter-row spacing) and testing conditions (wind speed, irradiance, and water temperature differentials). Other advantages are evaporation cuts of up to 49%, even payable cost of electricity (LCOE) of 0.036-0.10 $/kWh, payback periods of 4.7-8.4 years, and reductions in water of up to 105000 kL per year. The review concludes that the FPV technology is a potential and feasible source of renewable energy in various climates, especially when used in combination with hydro power or offshore wind energy.

Keywords

  • Floating photovoltaic
  • Performance analysis
  • Techno-economic feasibility
  • Hybrid energy systems
  • Renewable energy integration
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Kerbala Journal for Engineering Sciences (KJES)
Volume 6, Issue 2
June 2026
Pages 160-195
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  • Article View: 602
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APA

Alshekhly, M., & Alsarayreh, A. A. (2026). Floating Solar Photovoltaic: A Critical Review of Improvements in Thermal Competence, Cost-Effectiveness, and Hybrid System Integration. Kerbala Journal for Engineering Sciences (KJES), 6(2), 160-195. doi: 10.63463/kjes1224

MLA

Mohammed Alshekhly; Alanood A. Alsarayreh. "Floating Solar Photovoltaic: A Critical Review of Improvements in Thermal Competence, Cost-Effectiveness, and Hybrid System Integration". Kerbala Journal for Engineering Sciences (KJES), 6, 2, 2026, 160-195. doi: 10.63463/kjes1224

HARVARD

Alshekhly, M., Alsarayreh, A. A. (2026). 'Floating Solar Photovoltaic: A Critical Review of Improvements in Thermal Competence, Cost-Effectiveness, and Hybrid System Integration', Kerbala Journal for Engineering Sciences (KJES), 6(2), pp. 160-195. doi: 10.63463/kjes1224

VANCOUVER

Alshekhly, M., Alsarayreh, A. A. Floating Solar Photovoltaic: A Critical Review of Improvements in Thermal Competence, Cost-Effectiveness, and Hybrid System Integration. Kerbala Journal for Engineering Sciences (KJES), 2026; 6(2): 160-195. doi: 10.63463/kjes1224

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