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An Experimental Study on Buoyancy Induced Convective Heat Transfer in a Square Cavity using Multi-Walled Carbon Nanotube (MWCNT)/Water Nanofluid

TLDR
In this paper, a square enclosure of dimensions (40 × 40 × 200) mm is used as test section and MWCNT/Water nanofluid with volume fractions 0.1%, 0.3%, 1% and 2% and Rayleigh numbers ranging from 7 × 105 to 1 × 107 are studied.
Abstract
In recent times, convective heat transfer using nanofluid has been a active field of study. However experimental studies pertaining to buoyancy induced convective heat transfer using various nanofluid is relatively scarce. In present study, a square enclosure of dimensions (40 × 40 × 200) mm is used as test section. Initially, Al2 O3 /Water nanofluid with volume fractions 0.3%, 1% and 2% and Rayleigh numbers ranging from 7 × 105 to 1 × 107 are studied. These results are then compared with Ho's[1] experimental data. Nusselt number is calculated based on the thermo-physical properties that are measured in-house for the given conditions. Further, MWCNT/Water nanofluid with volume fractions 0.1%, 0.3% and 0.5% is formulated and are studied for various Rayleigh numbers. Comparison of Al2O3 /Water and MWCNT/Water nanofluid have been made for different volume fractions and for various range of Rayleigh numbers. It is observed that MWCNT/Water nanofluid when compared with Al2 O3 /Water nanofluid yields higher values of the Nusselt number for a given volume fractions. All the existing experimental studies using particle based nanofluid concluded a deterioration in natural convective heat transfer. This study for the first time demonstrates an enhancement in natural convection using MWCNT/Water nanofluid. Such enhancement cannot be simply explained based only on the relative changes in the thermophysical properties. Other factors such as percolation network in MWCNT/Water nanofluid which increases the heat transfer pathway between two walls and the role of slip mechanisms might be the possible reasons for the enhancement.

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Heat and mass transfer characteristics of carbon nanotube nanofluids: A review

TL;DR: In this paper, the authors present a comprehensive and up-to-date review of carbon nanotubes (CNTs) being applied in various heat transfer (convective and boiling) and mass transfer systems such as heat exchangers and separators.
Journal ArticleDOI

An experimental study on the natural convection heat transfer in rectangular enclosure using functionalized alumina-thermal oil-based nanofluids

TL;DR: In this paper, an experimental study on the convective heat transfer of nanofluids was conducted in a vertical rectangular enclosure with one heating and one cooling wall. And the results showed that the high nanoparticle concentrations of nanoparticles exhibit higher heat transfer coefficient as compared to the pure thermal oil.
Journal ArticleDOI

Free convection with MWCNT/water nanofluid having varying aspect ratio of MWCNT nanoparticle in thermally undulated enclosures

TL;DR: In this paper, a numerical simulation of 2D, steady and laminar free convection in rectangular cavities with different aspect ratios filled with water-based nanofluid is presented.
Journal ArticleDOI

3D investigation of natural convection of nanofluids in a curved boundary enclosure applying lattice Boltzmann method

TL;DR: In this paper, a multiple relaxation times lattice Boltzmann method (MRT-LBM) has been used to investigate the natural convection behavior of nanofluids in an enclosure.
References
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Journal ArticleDOI

Coefficient of thermal expansion of carbon nanotubes measured by Raman spectroscopy

TL;DR: In this article, the authors measured the dependence of Raman band frequency of double-walled carbon nanotubes in epoxy resin matrix composites and considering the effects of both the strain and temperature on the Raman bands.
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The Role of Percolation and Sheet Dynamics during Heat Conduction in poly-dispersed Graphene Nanofluids

TL;DR: In this paper, a thermal transport mechanism leading to the enhanced thermal conductivity of Graphene nanofluids has been proposed, where the size of the sheet is considered to be the key to the underlying mechanism.
Journal ArticleDOI

Scaling analysis for the investigation of slip mechanisms in nanofluids

TL;DR: From the scaling analysis, it is found that all of the slip mechanisms are dominant in particles of cylindrical shape as compared to that of spherical and sheet particles and the Brownian and gravity forces act considerably over a longer duration than the other forces.
Journal ArticleDOI

The role of percolation and sheet dynamics during heat conduction in poly-dispersed graphene nanofluids

TL;DR: In this paper, a thermal transport mechanism leading to the enhanced thermal conductivity of graphene nanofluids has been proposed, and the graphene sheet size is postulated to be the key to the underlying mechanism.
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