LAPSE:2020.0078
Published Article
LAPSE:2020.0078
Heat Transfer Enhancement by Coupling of Carbon Nanotubes and SiO2 Nanofluids: A Numerical Approach
Fitnat Saba, Saima Noor, Naveed Ahmed, Umar Khan, Syed Tauseef Mohyud-Din, Zarqa Bano, El-Sayed M. Sherif, Ilyas Khan
January 19, 2020
This article comprises the study of three-dimensional squeezing flow of (CNT-SiO2/H2O) hybrid nanofluid. The flow is confined inside a rotating channel whose lower wall is stretchable as well as permeable. Heat transfer with viscous dissipation is a main subject of interest. We have analyzed mathematically the benefits of hybridizing SiO 2 -based nanofluid with carbon nanotubes ( CNTs ) nanoparticles. To describe the effective thermal conductivity of the CNTs -based nanofluid, a renovated Hamilton−Crosser model (RHCM) has been employed. This model is an extension of Hamilton and Crosser’s model because it also incorporates the effect of the interfacial layer. For the present flow scenario, the governing equations (after the implementation of similarity transformations) results in a set of ordinary differential equations (ODEs). We have solved that system of ODEs, coupled with suitable boundary conditions (BCs), by implementing a newly proposed modified Hermite wavelet method (MHWM). The credibility of the proposed algorithm has been ensured by comparing the procured results with the result obtained by the Runge-Kutta-Fehlberg solution. Moreover, graphical assistance has also been provided to inspect the significance of various embedded parameters on the temperature and velocity profile. The expression for the local Nusselt number and the skin friction coefficient were also derived, and their influential behavior has been briefly discussed.
Keywords
(CNT-SiO2/H2O) hybrid nanofluid, heat transfer, Hermite polynomials, numerical results, permeable wall, viscous dissipation, wavelets
Suggested Citation
Saba F, Noor S, Ahmed N, Khan U, Mohyud-Din ST, Bano Z, M. Sherif ES, Khan I. Heat Transfer Enhancement by Coupling of Carbon Nanotubes and SiO2 Nanofluids: A Numerical Approach. (2020). LAPSE:2020.0078
Author Affiliations
Saba F: Department of Mathematics, Faculty of Sciences, HITEC University Taxila Cantt, Rawalpindi 47080, Pakistan
Noor S: Department of Mathematics, COMSATS University Islamabad, Islamabad 45550, Pakistan
Ahmed N: Department of Mathematics, Faculty of Sciences, HITEC University Taxila Cantt, Rawalpindi 47080, Pakistan [ORCID]
Khan U: Department of Mathematics and Statistics, Hazara University, Mansehra 21120, Pakistan
Mohyud-Din ST: Department of Mathematics, Faculty of Sciences, HITEC University Taxila Cantt, Rawalpindi 47080, Pakistan
Bano Z: Department of Mathematics and Social Sciences, Sukkur IBA University, Sukkur 65200, Pakistan
M. Sherif ES: Center of Excellence for Research in Engineering Materials (CEREM), King Saud University, P.O. Box 800, Al-Riyadh 11421, Saudi Arabia; Electrochemistry and Corrosion Laboratory, Department of Physical Chemistry, National Research Centre, El-Behoth St. 33, [ORCID]
Khan I: Faculty of Mathematics and Statistics, Ton Duc Thang University, Ho Chi Minh City 72915, Vietnam [ORCID]
Journal Name
Processes
Volume
7
Issue
12
Article Number
E937
Year
2019
Publication Date
2019-12-09
Published Version
ISSN
2227-9717
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Original Submission
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PII: pr7120937, Publication Type: Journal Article
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LAPSE:2020.0078
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doi:10.3390/pr7120937
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Jan 19, 2020
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Jan 19, 2020
 
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Calvin Tsay
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