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Preliminary thermal analysis of a combined photovoltaic–photothermic–nocturnal radiative cooling system

Hu, Mingke; Zhao, Bin; Li, Jing; Wang, Yunyun; Pei, Gang

Authors

Mingke Hu

Bin Zhao

Yunyun Wang

Gang Pei



Abstract

A novel combined photovoltaic–photothermic–nocturnal radiative cooling (PV–PT–RC) system was proposed to achieve multifunctional and all-weather operation. The proposed system collects electricity and heat energy at daytime through PV and PT conversions and cooling energy at nighttime through RC. A quasi-steady-state mathematical model that considers the spectral radiant distribution was established. A sensitivity analysis of the model to key inputs was carried out as well. An experimental apparatus was used to test the daily solar heating and nocturnal RC performance of the system, as well as verify the correctness of the mathematical model. The equilibrium temperature of the collecting plate showed root-mean-square deviation results of 2.8% and 1.8% in daily and nocturnal operation modes respectively, thereby validating the mathematical model. Simulation studies were performed to investigate the cooling performance of the PV–PT–RC system using the validated model. Results showed that insulation thickness and ambient temperature positively affects cooling performance, whereas wind velocity and precipitable water vapor amount negatively affects cooling performance. The RC performances of the PV–PT–RC system in different Chinese cities were investigated. The system exhibited optimal cooling performance during winter in northwestern China and the weakest cooling performance during summer in southeastern China.

Citation

Hu, M., Zhao, B., Li, J., Wang, Y., & Pei, G. (2017). Preliminary thermal analysis of a combined photovoltaic–photothermic–nocturnal radiative cooling system. Energy, 137, 419-430. https://doi.org/10.1016/j.energy.2017.03.075

Journal Article Type Article
Acceptance Date Mar 2, 2017
Online Publication Date Mar 31, 2017
Publication Date Oct 15, 2017
Deposit Date Mar 24, 2022
Journal Energy
Print ISSN 0360-5442
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 137
Pages 419-430
DOI https://doi.org/10.1016/j.energy.2017.03.075
Keywords Multi-functionality; Solar heating; Radiative cooling; Precipitable water vapor; Thermal performance
Public URL https://hull-repository.worktribe.com/output/3602586