Stagnation point flow toward an exponentially shrinking sheet in a hybrid nanofluid

Purpose: This paper aims to investigate the radiation and magnetohydrodynamic effect on the flow toward a stagnation point of an exponentially shrinking sheet in a hybrid nanofluid. Design/methodology/approach: The governing partial differential equations are transformed into a set of similarity equ...

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Main Authors: Waini, Iskandar, Pop, Ioan, Abu Bakar, Sakhinah, Ishak, Anuar
Format: Article
Language:English
Published: Emerald Group Holdings Ltd. 2022
Online Access:http://eprints.utem.edu.my/id/eprint/25961/2/STAGNATION%20POINT%20FLOW.PDF
http://eprints.utem.edu.my/id/eprint/25961/
https://www.emerald.com/insight/content/doi/10.1108/HFF-01-2021-0039/full/html
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Institution: Universiti Teknikal Malaysia Melaka
Language: English
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spelling my.utem.eprints.259612022-05-30T11:26:53Z http://eprints.utem.edu.my/id/eprint/25961/ Stagnation point flow toward an exponentially shrinking sheet in a hybrid nanofluid Waini, Iskandar Pop, Ioan Abu Bakar, Sakhinah Ishak, Anuar Purpose: This paper aims to investigate the radiation and magnetohydrodynamic effect on the flow toward a stagnation point of an exponentially shrinking sheet in a hybrid nanofluid. Design/methodology/approach: The governing partial differential equations are transformed into a set of similarity equations and are then solved numerically using the boundary value problem solver, bvp4c, available in MATLAB software. The effects of several physical parameters on the flow and the thermal characteristics of the hybrid nanofluid are analyzed and discussed. Findings: Numerical results clarify that the dual solutions arise for the shrinking case (λ < 0). The critical values expand for the stronger magnetic field. Besides, the skin friction and the heat transfer coefficients enhance with the rise of the magnetic field and the hybrid nanoparticles. The heat transfer rate increases by 10.11% for the nanofluid and 28.69% for the hybrid nanofluid compared to the regular fluid. In addition, the presence of radiation gives a higher heat transfer rate. Using the stability analysis, it is found that the first solution is stable, and the second solution is unstable, over time. Originality/value: The stagnation point flow problem has been widely studied for the flow over a stretching sheet, but only limited findings can be found for the flow over a shrinking sheet. Therefore, the present study considers the problem of the stagnation point flow over a shrinking sheet in a Cu-Al2O3/water hybrid nanofluid with the effects of magnetic field and thermal radiation. The dual solutions of the hybrid nanofluid flow over a shrinking sheet are obtained. Further analysis shows that only one of the solutions is stable and thus physically reliable as time evolves. Emerald Group Holdings Ltd. 2022-01 Article PeerReviewed text en http://eprints.utem.edu.my/id/eprint/25961/2/STAGNATION%20POINT%20FLOW.PDF Waini, Iskandar and Pop, Ioan and Abu Bakar, Sakhinah and Ishak, Anuar (2022) Stagnation point flow toward an exponentially shrinking sheet in a hybrid nanofluid. International Journal of Numerical Methods for Heat and Fluid Flow, 32 (3). pp. 1012-1024. ISSN 0961-5539 https://www.emerald.com/insight/content/doi/10.1108/HFF-01-2021-0039/full/html 10.1108/HFF-01-2021-0039
institution Universiti Teknikal Malaysia Melaka
building UTEM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknikal Malaysia Melaka
content_source UTEM Institutional Repository
url_provider http://eprints.utem.edu.my/
language English
description Purpose: This paper aims to investigate the radiation and magnetohydrodynamic effect on the flow toward a stagnation point of an exponentially shrinking sheet in a hybrid nanofluid. Design/methodology/approach: The governing partial differential equations are transformed into a set of similarity equations and are then solved numerically using the boundary value problem solver, bvp4c, available in MATLAB software. The effects of several physical parameters on the flow and the thermal characteristics of the hybrid nanofluid are analyzed and discussed. Findings: Numerical results clarify that the dual solutions arise for the shrinking case (λ < 0). The critical values expand for the stronger magnetic field. Besides, the skin friction and the heat transfer coefficients enhance with the rise of the magnetic field and the hybrid nanoparticles. The heat transfer rate increases by 10.11% for the nanofluid and 28.69% for the hybrid nanofluid compared to the regular fluid. In addition, the presence of radiation gives a higher heat transfer rate. Using the stability analysis, it is found that the first solution is stable, and the second solution is unstable, over time. Originality/value: The stagnation point flow problem has been widely studied for the flow over a stretching sheet, but only limited findings can be found for the flow over a shrinking sheet. Therefore, the present study considers the problem of the stagnation point flow over a shrinking sheet in a Cu-Al2O3/water hybrid nanofluid with the effects of magnetic field and thermal radiation. The dual solutions of the hybrid nanofluid flow over a shrinking sheet are obtained. Further analysis shows that only one of the solutions is stable and thus physically reliable as time evolves.
format Article
author Waini, Iskandar
Pop, Ioan
Abu Bakar, Sakhinah
Ishak, Anuar
spellingShingle Waini, Iskandar
Pop, Ioan
Abu Bakar, Sakhinah
Ishak, Anuar
Stagnation point flow toward an exponentially shrinking sheet in a hybrid nanofluid
author_facet Waini, Iskandar
Pop, Ioan
Abu Bakar, Sakhinah
Ishak, Anuar
author_sort Waini, Iskandar
title Stagnation point flow toward an exponentially shrinking sheet in a hybrid nanofluid
title_short Stagnation point flow toward an exponentially shrinking sheet in a hybrid nanofluid
title_full Stagnation point flow toward an exponentially shrinking sheet in a hybrid nanofluid
title_fullStr Stagnation point flow toward an exponentially shrinking sheet in a hybrid nanofluid
title_full_unstemmed Stagnation point flow toward an exponentially shrinking sheet in a hybrid nanofluid
title_sort stagnation point flow toward an exponentially shrinking sheet in a hybrid nanofluid
publisher Emerald Group Holdings Ltd.
publishDate 2022
url http://eprints.utem.edu.my/id/eprint/25961/2/STAGNATION%20POINT%20FLOW.PDF
http://eprints.utem.edu.my/id/eprint/25961/
https://www.emerald.com/insight/content/doi/10.1108/HFF-01-2021-0039/full/html
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