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Effect of air gap on a novel hybrid photovoltaic/thermal and thermally regenerative electrochemical cycle system

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  • Tang, Xin
  • Li, Guiqiang
  • Zhao, Xudong

Abstract

Electricity efficiency improvement of photovoltaic/thermal (PV/T) collector is still received much attention recently because solar energy is regarded as an effective and promising alternative to fossil fuels. A novel PV/T combined with a thermally regenerative electrochemical cycle (TREC) hybrid system is proposed in this paper to improve the overall electricity efficiency by means of converting the thermal energy from the hot water of the PV/T into electricity. As the heat gathering in the PV/T reduces the electrical efficiency of PV but improves both the thermal efficiency of the PV/T and electrical efficiency of the TREC, mathematic models are developed to assess and compare the performance of PV/T-TREC systems with and without air gap. The effects of heat recuperation as well as various working conditions on the overall electricity performance of hybrid systems are studied and analyzed. The results show that the PV/T-TREC hybrid system with air gap is superior to the one without air gap. Hybrid systems are better than PV/T and PV collector in all scenarios except for large wind velocity scenarios. The maximum improvement of the overall electrical efficiency is up to 1.79% at the solar radiation of 1000 W/m2. Additionally, at the ambient temperature of 5 °C, most cases at water inlet temperature below 15 °C can achieve a peak power generation. This paper may guide the design, optimization and application of the novel PV/T-TREC hybrid system to improve the overall electricity efficiency of solar energy.

Suggested Citation

  • Tang, Xin & Li, Guiqiang & Zhao, Xudong, 2021. "Effect of air gap on a novel hybrid photovoltaic/thermal and thermally regenerative electrochemical cycle system," Applied Energy, Elsevier, vol. 293(C).
  • Handle: RePEc:eee:appene:v:293:y:2021:i:c:s0306261921004396
    DOI: 10.1016/j.apenergy.2021.116963
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    References listed on IDEAS

    as
    1. Long, Rui & Li, Baode & Liu, Zhichun & Liu, Wei, 2016. "Ecological analysis of a thermally regenerative electrochemical cycle," Energy, Elsevier, vol. 107(C), pages 95-102.
    2. Fathabadi, Hassan, 2019. "Solar energy harvesting in buildings using a proposed novel electrochemical device as an alternative to PV modules," Renewable Energy, Elsevier, vol. 133(C), pages 118-125.
    3. Colin D. Wessells & Robert A. Huggins & Yi Cui, 2011. "Copper hexacyanoferrate battery electrodes with long cycle life and high power," Nature Communications, Nature, vol. 2(1), pages 1-5, September.
    4. Fathabadi, Hassan, 2019. "Two novel methods for converting the waste heat of PV modules caused by temperature rise into electric power," Renewable Energy, Elsevier, vol. 142(C), pages 543-551.
    5. Fathabadi, Hassan, 2019. "Replacing commercial thermoelectric generators with a novel electrochemical device in low-grade heat applications," Energy, Elsevier, vol. 174(C), pages 932-937.
    6. Kazemian, Arash & Salari, Ali & Hakkaki-Fard, Ali & Ma, Tao, 2019. "Numerical investigation and parametric analysis of a photovoltaic thermal system integrated with phase change material," Applied Energy, Elsevier, vol. 238(C), pages 734-746.
    7. Rejeb, Oussama & Dhaou, Houcine & Jemni, Abdelmajid, 2015. "A numerical investigation of a photovoltaic thermal (PV/T) collector," Renewable Energy, Elsevier, vol. 77(C), pages 43-50.
    8. Ma, Tao & Li, Meng & Kazemian, Arash, 2020. "Photovoltaic thermal module and solar thermal collector connected in series to produce electricity and high-grade heat simultaneously," Applied Energy, Elsevier, vol. 261(C).
    9. Li-Dong Zhao & Shih-Han Lo & Yongsheng Zhang & Hui Sun & Gangjian Tan & Ctirad Uher & C. Wolverton & Vinayak P. Dravid & Mercouri G. Kanatzidis, 2014. "Ultralow thermal conductivity and high thermoelectric figure of merit in SnSe crystals," Nature, Nature, vol. 508(7496), pages 373-377, April.
    10. Eisapour, M. & Eisapour, Amir Hossein & Hosseini, M.J. & Talebizadehsardari, P., 2020. "Exergy and energy analysis of wavy tubes photovoltaic-thermal systems using microencapsulated PCM nano-slurry coolant fluid," Applied Energy, Elsevier, vol. 266(C).
    11. Shi, Yu & Zhang, Liang & Li, Jun & Fu, Qian & Zhu, Xun & Liao, Qiang & Zhang, Yongsheng, 2020. "Cu/Ni composite electrodes for increased anodic coulombic efficiency and electrode operation time in a thermally regenerative ammonia-based battery for converting low-grade waste heat into electricity," Renewable Energy, Elsevier, vol. 159(C), pages 162-171.
    12. Mauro Pasta & Colin D. Wessells & Nian Liu & Johanna Nelson & Matthew T. McDowell & Robert A. Huggins & Michael F. Toney & Yi Cui, 2014. "Full open-framework batteries for stationary energy storage," Nature Communications, Nature, vol. 5(1), pages 1-9, May.
    13. Seok Woo Lee & Yuan Yang & Hyun-Wook Lee & Hadi Ghasemi & Daniel Kraemer & Gang Chen & Yi Cui, 2014. "An electrochemical system for efficiently harvesting low-grade heat energy," Nature Communications, Nature, vol. 5(1), pages 1-6, September.
    14. Khanna, Sourav & Reddy, K.S. & Mallick, Tapas K., 2017. "Performance analysis of tilted photovoltaic system integrated with phase change material under varying operating conditions," Energy, Elsevier, vol. 133(C), pages 887-899.
    15. Li, Guiqiang & Diallo, Thierno M.O. & Akhlaghi, Yousef Golizadeh & Shittu, Samson & Zhao, Xudong & Ma, Xiaoli & Wang, Yinfeng, 2019. "Simulation and experiment on thermal performance of a micro-channel heat pipe under different evaporator temperatures and tilt angles," Energy, Elsevier, vol. 179(C), pages 549-557.
    16. Long, Rui & Li, Baode & Liu, Zhichun & Liu, Wei, 2015. "Performance analysis of a solar-powered solid state heat engine for electricity generation," Energy, Elsevier, vol. 93(P1), pages 165-172.
    17. Long, Rui & Li, Baode & Liu, Zhichun & Liu, Wei, 2016. "Performance analysis of a dual loop thermally regenerative electrochemical cycle for waste heat recovery," Energy, Elsevier, vol. 107(C), pages 388-395.
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    4. Tang, Xin & Li, Guiqiang & Zhao, Xudong & Shi, Kai & Lao, Li, 2022. "Simulation analysis and experimental validation of enhanced photovoltaic thermal module by harnessing heat," Applied Energy, Elsevier, vol. 309(C).

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