Numerical analysis of solar air collector provided with rows of rectangular fins

The most promising collector must achieve the best thermal efficiency and fill out high requirements of low weight, low power consumption, ease of manufacturing, and low cost. In this study; a novel efficiently optimized flat plate solar air collector is modeled with a selective absorber and three r...

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Main Authors: Marwa Ammar, Ameni Mokni, Hatem Mhiri, Philippe Bournot
Format: Article
Language:English
Published: Elsevier 2020-11-01
Series:Energy Reports
Subjects:
CFD
Online Access:http://www.sciencedirect.com/science/article/pii/S2352484720316796
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spelling doaj-a9817c913805433cb28beb3958898e972020-12-23T05:02:46ZengElsevierEnergy Reports2352-48472020-11-01634123424Numerical analysis of solar air collector provided with rows of rectangular finsMarwa Ammar0Ameni Mokni1Hatem Mhiri2Philippe Bournot3Laboratory of Thermal and Thermodynamic of Industrial Processes, National School of Engineers of Monastir, Road of Ouardanine, 5000 Monastir, Tunisia; Corresponding author.Laboratory of Thermal and Thermodynamic of Industrial Processes, National School of Engineers of Monastir, Road of Ouardanine, 5000 Monastir, TunisiaLaboratory of Thermal and Thermodynamic of Industrial Processes, National School of Engineers of Monastir, Road of Ouardanine, 5000 Monastir, TunisiaAix Marseille Univ, CNRS, IUSTI, Marseille, FranceThe most promising collector must achieve the best thermal efficiency and fill out high requirements of low weight, low power consumption, ease of manufacturing, and low cost. In this study; a novel efficiently optimized flat plate solar air collector is modeled with a selective absorber and three rows of rectangular fins installed beneath the structure that provides 81% of thermal efficiency and 0.5 W of pumping power. A three dimensional CFD model of a flat plate solar air collector is developed and solved in steady-state conditions. We propose a suitable approach for assessing and optimizing a 1.28 m2 surface collector’s performance with forced convection flow. Results indicate that additional fin rows (from 35 rows to 142 rows) and fins relative height (0.5 to 0.8) with a nonselective absorber increase the thermal performance from 63% to 80%, and additional turbulent flow causes an increase of pump power from 1.8 W to 16 W. The adoption of a selective absorber contributes to efficiency 5% higher than that of a collector with 35 rows of fin for a volume flow of 85.33 m3/hm2. In contrast, the gain achieved by adding 142 rows of fin (l’/L=0.006) remains the most important, where it leads to an effective efficiency of 79.2% for a volume flow rate of 85.33 m3/hm2. Thus, it has been proposed to combine the selective absorber with the addition of rectangular fins in the new design.http://www.sciencedirect.com/science/article/pii/S2352484720316796Flat plate solar air collectorThermal efficiencyThermo-hydraulic efficiencyExergy efficiencyPump powerCFD
collection DOAJ
language English
format Article
sources DOAJ
author Marwa Ammar
Ameni Mokni
Hatem Mhiri
Philippe Bournot
spellingShingle Marwa Ammar
Ameni Mokni
Hatem Mhiri
Philippe Bournot
Numerical analysis of solar air collector provided with rows of rectangular fins
Energy Reports
Flat plate solar air collector
Thermal efficiency
Thermo-hydraulic efficiency
Exergy efficiency
Pump power
CFD
author_facet Marwa Ammar
Ameni Mokni
Hatem Mhiri
Philippe Bournot
author_sort Marwa Ammar
title Numerical analysis of solar air collector provided with rows of rectangular fins
title_short Numerical analysis of solar air collector provided with rows of rectangular fins
title_full Numerical analysis of solar air collector provided with rows of rectangular fins
title_fullStr Numerical analysis of solar air collector provided with rows of rectangular fins
title_full_unstemmed Numerical analysis of solar air collector provided with rows of rectangular fins
title_sort numerical analysis of solar air collector provided with rows of rectangular fins
publisher Elsevier
series Energy Reports
issn 2352-4847
publishDate 2020-11-01
description The most promising collector must achieve the best thermal efficiency and fill out high requirements of low weight, low power consumption, ease of manufacturing, and low cost. In this study; a novel efficiently optimized flat plate solar air collector is modeled with a selective absorber and three rows of rectangular fins installed beneath the structure that provides 81% of thermal efficiency and 0.5 W of pumping power. A three dimensional CFD model of a flat plate solar air collector is developed and solved in steady-state conditions. We propose a suitable approach for assessing and optimizing a 1.28 m2 surface collector’s performance with forced convection flow. Results indicate that additional fin rows (from 35 rows to 142 rows) and fins relative height (0.5 to 0.8) with a nonselective absorber increase the thermal performance from 63% to 80%, and additional turbulent flow causes an increase of pump power from 1.8 W to 16 W. The adoption of a selective absorber contributes to efficiency 5% higher than that of a collector with 35 rows of fin for a volume flow of 85.33 m3/hm2. In contrast, the gain achieved by adding 142 rows of fin (l’/L=0.006) remains the most important, where it leads to an effective efficiency of 79.2% for a volume flow rate of 85.33 m3/hm2. Thus, it has been proposed to combine the selective absorber with the addition of rectangular fins in the new design.
topic Flat plate solar air collector
Thermal efficiency
Thermo-hydraulic efficiency
Exergy efficiency
Pump power
CFD
url http://www.sciencedirect.com/science/article/pii/S2352484720316796
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