Thermal enhancement and entropy generation of an air-cooled 3D radiator with modified fin geometry and perforation: A numerical study

The increasing fuel prices have led researchers to work on the efficiency and development of heat-transferring devices. One such device is the hot water radiator, which is familiar in the domestic arena. The study aims to increase the efficiency and cooling performance of hot water 3D radiators by m...

Full description

Bibliographic Details
Main Authors: Fawaz Bukht Majmader, Md. Jahid Hasan
Format: Article
Language:English
Published: Elsevier 2023-12-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X23009772
_version_ 1797422559034081280
author Fawaz Bukht Majmader
Md. Jahid Hasan
author_facet Fawaz Bukht Majmader
Md. Jahid Hasan
author_sort Fawaz Bukht Majmader
collection DOAJ
description The increasing fuel prices have led researchers to work on the efficiency and development of heat-transferring devices. One such device is the hot water radiator, which is familiar in the domestic arena. The study aims to increase the efficiency and cooling performance of hot water 3D radiators by modifying the design of their fins and adding perforations for better fluid mixing. CFD simulations were carried out on the radiators with modified fin geometries (Wavy, Spike-rib, Cut-sections, Straight) and with two different intensities of perforation (19 and 38 perforations) for each case at varying inlet flowrates of the radiator. The numerical model in this study was validated with experimental work. The hydrothermal performance of each radiator was measured in terms of fin surface temperature, entropy generation, heat transfer rate, and thermal enhancement factor. The temperature distributions and fluid flow streamlines have also been shown. The results show that modifying the fin geometries augments the overall heat transfer rate by up to 131 % while perforating the fins boosts the rate to 134 %. Moreover, the radiation heat transfer is seen to have surpassed the convection heat transfer by 60–160 % for the modified radiator cases. Finally, the most efficient radiator is found based on the thermal enhancement factor, which is the spike-fin arrangement.
first_indexed 2024-03-09T07:35:01Z
format Article
id doaj.art-31d899238e474c8c9bf9320628ef7650
institution Directory Open Access Journal
issn 2214-157X
language English
last_indexed 2024-03-09T07:35:01Z
publishDate 2023-12-01
publisher Elsevier
record_format Article
series Case Studies in Thermal Engineering
spelling doaj.art-31d899238e474c8c9bf9320628ef76502023-12-03T05:41:19ZengElsevierCase Studies in Thermal Engineering2214-157X2023-12-0152103671Thermal enhancement and entropy generation of an air-cooled 3D radiator with modified fin geometry and perforation: A numerical studyFawaz Bukht Majmader0Md. Jahid Hasan1Department of Mechanical and Production Engineering (MPE), Islamic University of Technology (IUT), Board Bazar, Gazipur, 1704, BangladeshCorresponding author.; Department of Mechanical and Production Engineering (MPE), Islamic University of Technology (IUT), Board Bazar, Gazipur, 1704, BangladeshThe increasing fuel prices have led researchers to work on the efficiency and development of heat-transferring devices. One such device is the hot water radiator, which is familiar in the domestic arena. The study aims to increase the efficiency and cooling performance of hot water 3D radiators by modifying the design of their fins and adding perforations for better fluid mixing. CFD simulations were carried out on the radiators with modified fin geometries (Wavy, Spike-rib, Cut-sections, Straight) and with two different intensities of perforation (19 and 38 perforations) for each case at varying inlet flowrates of the radiator. The numerical model in this study was validated with experimental work. The hydrothermal performance of each radiator was measured in terms of fin surface temperature, entropy generation, heat transfer rate, and thermal enhancement factor. The temperature distributions and fluid flow streamlines have also been shown. The results show that modifying the fin geometries augments the overall heat transfer rate by up to 131 % while perforating the fins boosts the rate to 134 %. Moreover, the radiation heat transfer is seen to have surpassed the convection heat transfer by 60–160 % for the modified radiator cases. Finally, the most efficient radiator is found based on the thermal enhancement factor, which is the spike-fin arrangement.http://www.sciencedirect.com/science/article/pii/S2214157X23009772Air-cooled radiatorPerforationFins geometry modificationThermal enhancement factorCFD simulation
spellingShingle Fawaz Bukht Majmader
Md. Jahid Hasan
Thermal enhancement and entropy generation of an air-cooled 3D radiator with modified fin geometry and perforation: A numerical study
Case Studies in Thermal Engineering
Air-cooled radiator
Perforation
Fins geometry modification
Thermal enhancement factor
CFD simulation
title Thermal enhancement and entropy generation of an air-cooled 3D radiator with modified fin geometry and perforation: A numerical study
title_full Thermal enhancement and entropy generation of an air-cooled 3D radiator with modified fin geometry and perforation: A numerical study
title_fullStr Thermal enhancement and entropy generation of an air-cooled 3D radiator with modified fin geometry and perforation: A numerical study
title_full_unstemmed Thermal enhancement and entropy generation of an air-cooled 3D radiator with modified fin geometry and perforation: A numerical study
title_short Thermal enhancement and entropy generation of an air-cooled 3D radiator with modified fin geometry and perforation: A numerical study
title_sort thermal enhancement and entropy generation of an air cooled 3d radiator with modified fin geometry and perforation a numerical study
topic Air-cooled radiator
Perforation
Fins geometry modification
Thermal enhancement factor
CFD simulation
url http://www.sciencedirect.com/science/article/pii/S2214157X23009772
work_keys_str_mv AT fawazbukhtmajmader thermalenhancementandentropygenerationofanaircooled3dradiatorwithmodifiedfingeometryandperforationanumericalstudy
AT mdjahidhasan thermalenhancementandentropygenerationofanaircooled3dradiatorwithmodifiedfingeometryandperforationanumericalstudy