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Analysis of Heat Transfer and Fluid Flow in a Solar Air Heater with Sequentially Placed Rectangular Obstacles on the Fin Surface

Author(s)
An, Byeong-HwaMoon, Kwang-AmKim, Seong-BhinChoi, Hwi-Ung
Issued Date
2025-07
DOI
10.3390/en18143811
URI
https://scholarworks.unist.ac.kr/handle/201301/87741
Citation
ENERGIES, v.18, no.14, pp.3811
Abstract
A solar air heater (SAH) converts solar energy into heated air without causing environmental pollution. It features a low initial cost and easy maintenance due to its simple design. However, owing to air's poor thermal conductivity, its thermal efficiency is relatively low compared to that of other solar systems. To improve its thermal performance, previous studies have aimed at either enlarging the heat transfer surface or increasing the convective heat transfer coefficient. In this study, a novel SAH with fins and sequentially placed obstacles on the fin surface-designed to achieve both surface extension through a finned channel and enhancement of the heat transfer coefficient via the obstacles-was investigated using computational fluid dynamics analysis. The results confirmed that the obstacles enhanced heat transfer performance by up to 2.602 times in the finned channel. However, the obstacles also caused a pressure loss. Therefore, the thermo-hydraulic performance was discussed, and it was concluded that the obstacles with a relative height of 0.12 and a relative pitch of 10 yielded the maximum THP values among the investigated conditions. Additionally, correlations for the Nusselt number and friction factor were derived and predicted the simulation values with good agreement.
Publisher
MDPI
ISSN
1996-1073
Keyword (Author)
solar air heatersolar energy utilizationCFDNusselt numberfriction factor
Keyword
RIB ROUGHNESSCFD ANALYSISTHERMOHYDRAULIC PERFORMANCETRANSFER ENHANCEMENTTRANSVERSE RIBSNUSSELT NUMBERFRICTION FACTORDUCTDYNAMICSOPTIMIZATION

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