Aspect ratio's critical role in enhancing natural convective heat transfer with temperature-dependent nanofluids within rectangular enclosures

Significant research has been performed on natural convection involving nanofluids inside rectangular enclosures since they are extensively used in thermal engineering. However, a significant gap remains in comprehending the conflicting results in nanofluid behavior observed between experimental and...

Full description

Bibliographic Details
Published in:International Journal of Thermofluids
Main Authors: Bilal El hadoui, Mourad Kaddiri
Format: Article
Language:English
Published: Elsevier 2023-11-01
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2666202723002161
_version_ 1851075690875584512
author Bilal El hadoui
Mourad Kaddiri
author_facet Bilal El hadoui
Mourad Kaddiri
author_sort Bilal El hadoui
collection DOAJ
container_title International Journal of Thermofluids
description Significant research has been performed on natural convection involving nanofluids inside rectangular enclosures since they are extensively used in thermal engineering. However, a significant gap remains in comprehending the conflicting results in nanofluid behavior observed between experimental and numerical studies. This study seeks to bridge this divide by examining natural convective heat transfer within vertical and horizontal enclosures filled with Al2O3/Water nanofluid. Using temperature-dependent viscosity and thermal conductivity, we aim to elucidate the key parameters influencing nanofluid enhancement. The results obtained through numerical simulations, using the finite difference method, showed the impact of different parameters namely nanoparticle volume fraction, 0 ≤ φ ≤ 0.05, nanoparticle size, dnp = 13, 29, and 45 nm, and aspect ratio, 0.25 ≤ A ≤ 4, on various factors, including heat transfer rates, maximal stream function, and temperature and stream function contours. The outcomes revealed that the use of nanofluids leads to improvements in heat transfer, but only when the aspect ratio is below certain critical values, Acr = 0.56, 0.48, and 0.53 for φ = 0.01, 0.03, and 0.05 respectively. Beyond these values, pure water performs better than the nanofluids in terms of heat transfer where the enhancement drops to -8%, -23%, and -22% when φ = 0.01, 0.03, and 0.05 respectively. Additionally, this critical value relies on the nanoparticle volume fraction and it rises as the nanoparticle diameter augments. This effect is believed to be caused by the high enhancement in viscosity compared to thermal conductivity when the convective mode dominates the conductive one. Furthermore, a larger aspect ratio leads to better heat transfer and the smaller nanoparticles are favorable for better heat transfer for a particular nanoparticle volume fraction. These findings carry significant implications for the field of nanofluid engineering, emphasizing the indispensable consideration of aspect ratios in optimizing thermal performance.
format Article
id doaj-art-bf451d8c8dfb4e4ca2ca54d7fafbfb3d
institution Directory of Open Access Journals
issn 2666-2027
language English
publishDate 2023-11-01
publisher Elsevier
record_format Article
spelling doaj-art-bf451d8c8dfb4e4ca2ca54d7fafbfb3d2025-08-19T22:33:40ZengElsevierInternational Journal of Thermofluids2666-20272023-11-012010050110.1016/j.ijft.2023.100501Aspect ratio's critical role in enhancing natural convective heat transfer with temperature-dependent nanofluids within rectangular enclosuresBilal El hadoui0Mourad Kaddiri1Corresponding author.; Faculty of Sciences and Technologies, Laboratory of Industrial Engineering and Surface Engineering, Sultan Moulay Slimane University, B.P. 523, Beni-Mellal 23000, MoroccoFaculty of Sciences and Technologies, Laboratory of Industrial Engineering and Surface Engineering, Sultan Moulay Slimane University, B.P. 523, Beni-Mellal 23000, MoroccoSignificant research has been performed on natural convection involving nanofluids inside rectangular enclosures since they are extensively used in thermal engineering. However, a significant gap remains in comprehending the conflicting results in nanofluid behavior observed between experimental and numerical studies. This study seeks to bridge this divide by examining natural convective heat transfer within vertical and horizontal enclosures filled with Al2O3/Water nanofluid. Using temperature-dependent viscosity and thermal conductivity, we aim to elucidate the key parameters influencing nanofluid enhancement. The results obtained through numerical simulations, using the finite difference method, showed the impact of different parameters namely nanoparticle volume fraction, 0 ≤ φ ≤ 0.05, nanoparticle size, dnp = 13, 29, and 45 nm, and aspect ratio, 0.25 ≤ A ≤ 4, on various factors, including heat transfer rates, maximal stream function, and temperature and stream function contours. The outcomes revealed that the use of nanofluids leads to improvements in heat transfer, but only when the aspect ratio is below certain critical values, Acr = 0.56, 0.48, and 0.53 for φ = 0.01, 0.03, and 0.05 respectively. Beyond these values, pure water performs better than the nanofluids in terms of heat transfer where the enhancement drops to -8%, -23%, and -22% when φ = 0.01, 0.03, and 0.05 respectively. Additionally, this critical value relies on the nanoparticle volume fraction and it rises as the nanoparticle diameter augments. This effect is believed to be caused by the high enhancement in viscosity compared to thermal conductivity when the convective mode dominates the conductive one. Furthermore, a larger aspect ratio leads to better heat transfer and the smaller nanoparticles are favorable for better heat transfer for a particular nanoparticle volume fraction. These findings carry significant implications for the field of nanofluid engineering, emphasizing the indispensable consideration of aspect ratios in optimizing thermal performance.http://www.sciencedirect.com/science/article/pii/S2666202723002161Natural convectionHeat transfer enhancementNanofluidTemperature-dependent propertiesRectangular enclosure
spellingShingle Bilal El hadoui
Mourad Kaddiri
Aspect ratio's critical role in enhancing natural convective heat transfer with temperature-dependent nanofluids within rectangular enclosures
Natural convection
Heat transfer enhancement
Nanofluid
Temperature-dependent properties
Rectangular enclosure
title Aspect ratio's critical role in enhancing natural convective heat transfer with temperature-dependent nanofluids within rectangular enclosures
title_full Aspect ratio's critical role in enhancing natural convective heat transfer with temperature-dependent nanofluids within rectangular enclosures
title_fullStr Aspect ratio's critical role in enhancing natural convective heat transfer with temperature-dependent nanofluids within rectangular enclosures
title_full_unstemmed Aspect ratio's critical role in enhancing natural convective heat transfer with temperature-dependent nanofluids within rectangular enclosures
title_short Aspect ratio's critical role in enhancing natural convective heat transfer with temperature-dependent nanofluids within rectangular enclosures
title_sort aspect ratio s critical role in enhancing natural convective heat transfer with temperature dependent nanofluids within rectangular enclosures
topic Natural convection
Heat transfer enhancement
Nanofluid
Temperature-dependent properties
Rectangular enclosure
url http://www.sciencedirect.com/science/article/pii/S2666202723002161
work_keys_str_mv AT bilalelhadoui aspectratioscriticalroleinenhancingnaturalconvectiveheattransferwithtemperaturedependentnanofluidswithinrectangularenclosures
AT mouradkaddiri aspectratioscriticalroleinenhancingnaturalconvectiveheattransferwithtemperaturedependentnanofluidswithinrectangularenclosures