Thermosolutal Marangoni convective flow of MHD tangent hyperbolic hybrid nanofluids with elastic deformation and heat source

In this work, the Marangoni convective flow of magnetohydrodynamic tangent hyperbolic (Fe3O4 - Cu /Fe3O4-Cu/ ethylene glycol) hybrid nanofluids over a plate dipped in a permeable material with heat absorption/generation, heat radiation, elastic deformation and viscous dissipation is discussed. The i...

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Main Authors: Zhou, Xiangning, Qureshi, Muhammad Amer, Khan, Nargis, Jamshed, Wasim, Mohamed Isa, Siti Suzilliana Putri, Balakrishnan, Nanthini, Syed M. Hussain, .
Format: Article
Language:English
Published: De Gruyter 2024
Online Access:http://psasir.upm.edu.my/id/eprint/114620/
http://psasir.upm.edu.my/id/eprint/114620/1/114620.pdf
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author Zhou, Xiangning
Qureshi, Muhammad Amer
Khan, Nargis
Jamshed, Wasim
Mohamed Isa, Siti Suzilliana Putri
Balakrishnan, Nanthini
Syed M. Hussain, .
author_facet Zhou, Xiangning
Qureshi, Muhammad Amer
Khan, Nargis
Jamshed, Wasim
Mohamed Isa, Siti Suzilliana Putri
Balakrishnan, Nanthini
Syed M. Hussain, .
author_sort Zhou, Xiangning
building UPM Institutional Repository
collection Online Access
description In this work, the Marangoni convective flow of magnetohydrodynamic tangent hyperbolic (Fe3O4 - Cu /Fe3O4-Cu/ ethylene glycol) hybrid nanofluids over a plate dipped in a permeable material with heat absorption/generation, heat radiation, elastic deformation and viscous dissipation is discussed. The impact of activation energy is also examined. Hybrid nanofluids are regarded as advanced nanofluids due to the thermal characteristics and emerging advantages that support the desire to augment the rate of heat transmission. The generalized Cattaneo-Christov theory, which takes into account the significance of relaxation times, is modified for the phenomena of mass and heat transfer. The fundamental governing partial differential equations are converted to ordinary differential equations (ODEs) by adopting similarity variables. The Runge-Kutta-Fehlberg-45 technique is utilized to solve nonlinear ODEs. Regarding the non-dimensional embedded parameters, a graphic investigation of the thermal field, concentration distribution, and velocity profile is performed. The results show that the increasing Marangoni ratio parameter enhances velocity and concentration distributions while decreases the temperature distribution. The velocity profile is decreased and the efficiency of heat transfer is improved as the porosity parameter is increased. Nusselt number is diminished with the rising values of the porosity variable.
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spelling upm-1146202025-01-21T03:56:35Z http://psasir.upm.edu.my/id/eprint/114620/ Thermosolutal Marangoni convective flow of MHD tangent hyperbolic hybrid nanofluids with elastic deformation and heat source Zhou, Xiangning Qureshi, Muhammad Amer Khan, Nargis Jamshed, Wasim Mohamed Isa, Siti Suzilliana Putri Balakrishnan, Nanthini Syed M. Hussain, . In this work, the Marangoni convective flow of magnetohydrodynamic tangent hyperbolic (Fe3O4 - Cu /Fe3O4-Cu/ ethylene glycol) hybrid nanofluids over a plate dipped in a permeable material with heat absorption/generation, heat radiation, elastic deformation and viscous dissipation is discussed. The impact of activation energy is also examined. Hybrid nanofluids are regarded as advanced nanofluids due to the thermal characteristics and emerging advantages that support the desire to augment the rate of heat transmission. The generalized Cattaneo-Christov theory, which takes into account the significance of relaxation times, is modified for the phenomena of mass and heat transfer. The fundamental governing partial differential equations are converted to ordinary differential equations (ODEs) by adopting similarity variables. The Runge-Kutta-Fehlberg-45 technique is utilized to solve nonlinear ODEs. Regarding the non-dimensional embedded parameters, a graphic investigation of the thermal field, concentration distribution, and velocity profile is performed. The results show that the increasing Marangoni ratio parameter enhances velocity and concentration distributions while decreases the temperature distribution. The velocity profile is decreased and the efficiency of heat transfer is improved as the porosity parameter is increased. Nusselt number is diminished with the rising values of the porosity variable. De Gruyter 2024-09-09 Article PeerReviewed text en cc_by_4 http://psasir.upm.edu.my/id/eprint/114620/1/114620.pdf Zhou, Xiangning and Qureshi, Muhammad Amer and Khan, Nargis and Jamshed, Wasim and Mohamed Isa, Siti Suzilliana Putri and Balakrishnan, Nanthini and Syed M. Hussain, . (2024) Thermosolutal Marangoni convective flow of MHD tangent hyperbolic hybrid nanofluids with elastic deformation and heat source. Open Physics, 22 (1). art. no. 20240082. ISSN 2391-5471 https://www.degruyter.com/document/doi/10.1515/phys-2024-0082/html 10.1515/phys-2024-0082
spellingShingle Zhou, Xiangning
Qureshi, Muhammad Amer
Khan, Nargis
Jamshed, Wasim
Mohamed Isa, Siti Suzilliana Putri
Balakrishnan, Nanthini
Syed M. Hussain, .
Thermosolutal Marangoni convective flow of MHD tangent hyperbolic hybrid nanofluids with elastic deformation and heat source
title Thermosolutal Marangoni convective flow of MHD tangent hyperbolic hybrid nanofluids with elastic deformation and heat source
title_full Thermosolutal Marangoni convective flow of MHD tangent hyperbolic hybrid nanofluids with elastic deformation and heat source
title_fullStr Thermosolutal Marangoni convective flow of MHD tangent hyperbolic hybrid nanofluids with elastic deformation and heat source
title_full_unstemmed Thermosolutal Marangoni convective flow of MHD tangent hyperbolic hybrid nanofluids with elastic deformation and heat source
title_short Thermosolutal Marangoni convective flow of MHD tangent hyperbolic hybrid nanofluids with elastic deformation and heat source
title_sort thermosolutal marangoni convective flow of mhd tangent hyperbolic hybrid nanofluids with elastic deformation and heat source
url http://psasir.upm.edu.my/id/eprint/114620/
http://psasir.upm.edu.my/id/eprint/114620/
http://psasir.upm.edu.my/id/eprint/114620/
http://psasir.upm.edu.my/id/eprint/114620/1/114620.pdf