Skip to main content

Research Repository

Advanced Search

Enhancing radiative sky cooling performance by employing crossed compound parabolic concentrating configurations

Dan, Ya; Hu, Mingke; Wang, Qiliang; Su, Yuehong; Riffat, Saffa

Enhancing radiative sky cooling performance by employing crossed compound parabolic concentrating configurations Thumbnail


Authors

Ya Dan

Mingke Hu

Dr QILIANG WANG Qiliang.Wang1@nottingham.ac.uk
MARIE SKLODOWSKA-CURIE POSTDOCTORAL FELLOW



Abstract

Achieving superior radiative sky cooling (RC) performance in practical applications is challenging due to its cooling power is easily compromised by unwanted thermal energy influxes, including solar heat gain and thermal radiation from nearby warm objects. To address this issue, the present work introduces the integration of affiliated crossed compound parabolic concentrators (CPC) as a means to effectively mitigate this thermal burden. Through the development of a comprehensive mathematical framework that characterizes the heat exchange between the RC emitter and different environmental heat sources, the cooling performance of the novel crossed CPC-RC module is evaluated and compared with other RC configurations. The results show that due to its excellent capability to shield unfavourable heat inflows from large zenith angles, the crossed CPC-RC module shows the potential to reach a cooling power density of 99.50 W/m2 at noon, outperforming the flat-RC and 2D CPC-RC modules by 5.1% and 41.7%, respectively. Furthermore, key parameters optimization and the cooling performance assessment throughout a typical summer day is carried out to demonstrate the superiority of the crossed CPC structure in boosting cooling capacity, particularly the cooling benefits throughout the day, thereby offering a promising solution to better align with the cooling demands of buildings.

Citation

Dan, Y., Hu, M., Wang, Q., Su, Y., & Riffat, S. (2025). Enhancing radiative sky cooling performance by employing crossed compound parabolic concentrating configurations. Renewable Energy, 239, Article 121979. https://doi.org/10.1016/j.renene.2024.121979

Journal Article Type Article
Acceptance Date Nov 21, 2024
Online Publication Date Nov 22, 2024
Publication Date Feb 1, 2025
Deposit Date Dec 3, 2024
Publicly Available Date Dec 3, 2024
Journal Renewable Energy
Print ISSN 0960-1481
Electronic ISSN 1879-0682
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 239
Article Number 121979
DOI https://doi.org/10.1016/j.renene.2024.121979
Keywords Crossed compound parabolic concentrator; Radiative cooling; Spectral property; Cooling power density; Solar acceptance ratio
Public URL https://nottingham-repository.worktribe.com/output/42595248
Publisher URL https://www.sciencedirect.com/science/article/pii/S0960148124020470?via%3Dihub