LAPSE:2023.15874
Published Article

LAPSE:2023.15874
Jet Impingement Cooling Enhanced with Nano-Encapsulated PCM
March 2, 2023
Abstract
In the present study, the laminar flow and heat transfer of water jet impingement enhanced with nano-encapsulated phase change material (NEPCM) slurry on a hot plate is analytically investigated for the first time. A similarity solution approach is applied to momentum and energy equations in order to determine the flow velocity and heat transfer fields. The effect of different physical parameters such as jet velocity, Reynolds number, jet inlet temperature, and the NEPCM concentration on the cooling performance of the impinging jet are investigated. The volume fraction of NEPCM particles plays an essential role in the flow and heat transfer fields. The results show that NEPCM slurry can significantly enhance the cooling performance of the system as it improves the latent heat storage capacity of the liquid jet. However, the maximum cooling performance of the system is achieved under an optimum NEPCM concentration (15%). A further increase in NEPCM volume fraction has an unfavorable effect due to increasing the viscosity and reducing the conductivity simultaneously. The effect of adding nano-metal particles on the heat transfer performance is also investigated and compared with NEPCM slurry. NEPCM slurry shows a better result in its maximum performance. Compared with the water jet, adding nano and NEPCM particles would overall enhance the system’s thermal performance by 16% and 7%, respectively.
In the present study, the laminar flow and heat transfer of water jet impingement enhanced with nano-encapsulated phase change material (NEPCM) slurry on a hot plate is analytically investigated for the first time. A similarity solution approach is applied to momentum and energy equations in order to determine the flow velocity and heat transfer fields. The effect of different physical parameters such as jet velocity, Reynolds number, jet inlet temperature, and the NEPCM concentration on the cooling performance of the impinging jet are investigated. The volume fraction of NEPCM particles plays an essential role in the flow and heat transfer fields. The results show that NEPCM slurry can significantly enhance the cooling performance of the system as it improves the latent heat storage capacity of the liquid jet. However, the maximum cooling performance of the system is achieved under an optimum NEPCM concentration (15%). A further increase in NEPCM volume fraction has an unfavorable effect due to increasing the viscosity and reducing the conductivity simultaneously. The effect of adding nano-metal particles on the heat transfer performance is also investigated and compared with NEPCM slurry. NEPCM slurry shows a better result in its maximum performance. Compared with the water jet, adding nano and NEPCM particles would overall enhance the system’s thermal performance by 16% and 7%, respectively.
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Keywords
heat transfer, jet impingement cooling, nano-encapsulated phase change material, Optimization, similarity solution
Subject
Suggested Citation
Mohaghegh MR, Tasnim SH, Aliabadi AA, Mahmud S. Jet Impingement Cooling Enhanced with Nano-Encapsulated PCM. (2023). LAPSE:2023.15874
Author Affiliations
Mohaghegh MR: School of Engineering, University of Guelph, Guelph, ON N1G 2W1, Canada [ORCID]
Tasnim SH: School of Engineering, University of Guelph, Guelph, ON N1G 2W1, Canada
Aliabadi AA: School of Engineering, University of Guelph, Guelph, ON N1G 2W1, Canada
Mahmud S: School of Engineering, University of Guelph, Guelph, ON N1G 2W1, Canada
Tasnim SH: School of Engineering, University of Guelph, Guelph, ON N1G 2W1, Canada
Aliabadi AA: School of Engineering, University of Guelph, Guelph, ON N1G 2W1, Canada
Mahmud S: School of Engineering, University of Guelph, Guelph, ON N1G 2W1, Canada
Journal Name
Energies
Volume
15
Issue
3
First Page
1034
Year
2022
Publication Date
2022-01-29
ISSN
1996-1073
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Original Submission
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PII: en15031034, Publication Type: Journal Article
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LAPSE:2023.15874
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https://doi.org/10.3390/en15031034
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Mar 2, 2023
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