Impact of Al<sub>2</sub>O<sub>3</sub> in Electrically Conducting Mineral Oil-Based Maxwell Nanofluid: Application to the Petroleum Industry

Alumina nanoparticles (Al<sub>2</sub>O<sub>3</sub>) are one of the essential metal oxides and have a wide range of applications and unique physio-chemical features. Most notably, alumina has been shown to have thermal properties such as high thermal conductivity and a convect...

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Published in:Fractal and Fractional
Main Authors: Hanifa Hanif, Sharidan Shafie
Format: Article
Language:English
Published: MDPI AG 2022-03-01
Subjects:
Online Access:https://www.mdpi.com/2504-3110/6/4/180
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author Hanifa Hanif
Sharidan Shafie
author_facet Hanifa Hanif
Sharidan Shafie
author_sort Hanifa Hanif
collection DOAJ
container_title Fractal and Fractional
description Alumina nanoparticles (Al<sub>2</sub>O<sub>3</sub>) are one of the essential metal oxides and have a wide range of applications and unique physio-chemical features. Most notably, alumina has been shown to have thermal properties such as high thermal conductivity and a convective heat transfer coefficient. Therefore, this study is conducted to integrate the adsorption of Al<sub>2</sub>O<sub>3</sub> in mineral oil-based Maxwell fluid. The ambitious goal of this study is to intensify the mechanical and thermal properties of a Maxwell fluid under heat flux boundary conditions. The novelty of the research is increased by introducing fractional derivatives to the Maxwell model. There are various distinct types of fractional derivative definitions, with the Caputo fractional derivative being one of the most predominantly applied. Therefore, the fractoinal-order derivatives are evaluated using the fractional Caputo derivative, and the integer-order derivatives are evaluated using the Crank–Nicolson method. The obtained results are graphically displayed to demonstrate how all governing parameters, such as nanoparticle volume fraction, relaxation time, fractional derivative, magnetic field, thermal radiation, and viscous dissipation, have a significant impact on fluid flow and temperature distribution.
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spelling doaj-art-e6bb0e60b20d4ec38dcb7414f0cefa412025-08-20T00:13:14ZengMDPI AGFractal and Fractional2504-31102022-03-016418010.3390/fractalfract6040180Impact of Al<sub>2</sub>O<sub>3</sub> in Electrically Conducting Mineral Oil-Based Maxwell Nanofluid: Application to the Petroleum IndustryHanifa Hanif0Sharidan Shafie1Department of Mathematics, Sardar Bahadur Khan Women’s University, Quetta 87300, PakistanDepartment of Mathematical Sciences, Faculty of Science, Universiti Teknologi Malaysia, Johor Bahru 81310, Johor, MalaysiaAlumina nanoparticles (Al<sub>2</sub>O<sub>3</sub>) are one of the essential metal oxides and have a wide range of applications and unique physio-chemical features. Most notably, alumina has been shown to have thermal properties such as high thermal conductivity and a convective heat transfer coefficient. Therefore, this study is conducted to integrate the adsorption of Al<sub>2</sub>O<sub>3</sub> in mineral oil-based Maxwell fluid. The ambitious goal of this study is to intensify the mechanical and thermal properties of a Maxwell fluid under heat flux boundary conditions. The novelty of the research is increased by introducing fractional derivatives to the Maxwell model. There are various distinct types of fractional derivative definitions, with the Caputo fractional derivative being one of the most predominantly applied. Therefore, the fractoinal-order derivatives are evaluated using the fractional Caputo derivative, and the integer-order derivatives are evaluated using the Crank–Nicolson method. The obtained results are graphically displayed to demonstrate how all governing parameters, such as nanoparticle volume fraction, relaxation time, fractional derivative, magnetic field, thermal radiation, and viscous dissipation, have a significant impact on fluid flow and temperature distribution.https://www.mdpi.com/2504-3110/6/4/180Maxwell fluidfractional derivativenanofluidCrank–Nicolson method
spellingShingle Hanifa Hanif
Sharidan Shafie
Impact of Al<sub>2</sub>O<sub>3</sub> in Electrically Conducting Mineral Oil-Based Maxwell Nanofluid: Application to the Petroleum Industry
Maxwell fluid
fractional derivative
nanofluid
Crank–Nicolson method
title Impact of Al<sub>2</sub>O<sub>3</sub> in Electrically Conducting Mineral Oil-Based Maxwell Nanofluid: Application to the Petroleum Industry
title_full Impact of Al<sub>2</sub>O<sub>3</sub> in Electrically Conducting Mineral Oil-Based Maxwell Nanofluid: Application to the Petroleum Industry
title_fullStr Impact of Al<sub>2</sub>O<sub>3</sub> in Electrically Conducting Mineral Oil-Based Maxwell Nanofluid: Application to the Petroleum Industry
title_full_unstemmed Impact of Al<sub>2</sub>O<sub>3</sub> in Electrically Conducting Mineral Oil-Based Maxwell Nanofluid: Application to the Petroleum Industry
title_short Impact of Al<sub>2</sub>O<sub>3</sub> in Electrically Conducting Mineral Oil-Based Maxwell Nanofluid: Application to the Petroleum Industry
title_sort impact of al sub 2 sub o sub 3 sub in electrically conducting mineral oil based maxwell nanofluid application to the petroleum industry
topic Maxwell fluid
fractional derivative
nanofluid
Crank–Nicolson method
url https://www.mdpi.com/2504-3110/6/4/180
work_keys_str_mv AT hanifahanif impactofalsub2subosub3subinelectricallyconductingmineraloilbasedmaxwellnanofluidapplicationtothepetroleumindustry
AT sharidanshafie impactofalsub2subosub3subinelectricallyconductingmineraloilbasedmaxwellnanofluidapplicationtothepetroleumindustry