Investigating the effect of tube diameter on the performance of a hybrid photovoltaic–thermal system based on phase change materials and nanofluids
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Date
Authors
Alqaed, Saeed
Mustafa, Jawed
Almehmadi, Fahad Awjah
Alharthi, Mathkar A.
Sharifpur, Mohsen
Cheraghian, Goshtasp
Journal Title
Journal ISSN
Volume Title
Publisher
MDPI
Abstract
The finite element (FEM) approach is used in this study to model the laminar flow of an eco-friendly nanofluid (NF) within three pipes in a solar system. A solar panel and a supporting phase change material (PCM) that three pipelines flowed through made up the solar system. An organic, eco-friendly PCM was employed. Several fins were used on the pipes, and the NF temperature and panel temperature were measured at different flow rates. To model the NF flow, a two-phase mixture was used. As a direct consequence of the flow rate being raised by a factor of two, the maximum temperature of the panel dropped by 1.85 °C, and the average temperature dropped by 1.82 °C. As the flow rate increased, the temperature of the output flow dropped by up to 2 °C. At flow rates ranging from low to medium to high, the PCM melted completely in a short amount of time; however, at high flow rates, a portion of the PCM remained non-melted surrounding the pipes. An increase in the NF flow rate had a variable effect on the heat transfer (HTR) coefficient.
Description
Keywords
Two-phase organic nanofluid, Solar energy, Environment, Organic PCM, Phase change material (PCM), Heat transfer coefficient (HTC)
Sustainable Development Goals
Citation
Alqaed, S.; Mustafa, J.;
Almehmadi, F.A.; Alharthi, M.A.;
Sharifpur, M.; Cheraghian, G.
Investigating the Effect of Tube
Diameter on the Performance of a
Hybrid Photovoltaic–Thermal
System Based on Phase Change
Materials and Nanofluids. Materials
2022, 15, 7613. https://doi.org/10.3390/ma15217613.