Dual solutions for axisymmetric flow and heat transfer due to a permeable radially shrinking disk in copper oxide (CuO) and silver (Ag) hybrid nanofluids with radiation effect

Purpose: This study aims to investigate the dual solutions for axisymmetric flow and heat transfer due to a permeable radially shrinking disk in copper oxide (CuO) and silver (Ag) hybrid nanofluids with radiation effect. Design/methodology/approach: The partial differential equations that governed t...

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Published in:International Journal of Numerical Methods for Heat and Fluid Flow
Main Author: Waini I.; Jamrus F.N.; Roșca N.C.; Roșca A.V.; Pop I.
Format: Article
Language:English
Published: Emerald Publishing 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85180242000&doi=10.1108%2fHFF-09-2023-0537&partnerID=40&md5=eeacc9ba69f03bf01a8772cbad5c5191
id 2-s2.0-85180242000
spelling 2-s2.0-85180242000
Waini I.; Jamrus F.N.; Roșca N.C.; Roșca A.V.; Pop I.
Dual solutions for axisymmetric flow and heat transfer due to a permeable radially shrinking disk in copper oxide (CuO) and silver (Ag) hybrid nanofluids with radiation effect
2024
International Journal of Numerical Methods for Heat and Fluid Flow
34
3
10.1108/HFF-09-2023-0537
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85180242000&doi=10.1108%2fHFF-09-2023-0537&partnerID=40&md5=eeacc9ba69f03bf01a8772cbad5c5191
Purpose: This study aims to investigate the dual solutions for axisymmetric flow and heat transfer due to a permeable radially shrinking disk in copper oxide (CuO) and silver (Ag) hybrid nanofluids with radiation effect. Design/methodology/approach: The partial differential equations that governed the problem will undergo a transformation into a set of similarity equations. Following this transformation, a numerical solution will be obtained using the boundary value problem solver, bvp4c, built in the MATLAB software. Later, analysis and discussion are conducted to specifically examine how various physical parameters affect both the flow characteristics and the thermal properties of the hybrid nanofluid. Findings: Dual solutions are discovered to occur for the case of shrinking disk (λ < 0). Stronger suction triggers the critical values’ expansion and delays the boundary layer separation. Through stability analysis, it is determined that one of the solutions is stable, whereas the other solution exhibits instability, over time. Moreover, volume fraction upsurge enhances skin friction and heat transfer in hybrid nanofluid. The hybrid nanofluid’s heat transfer also heightened with the influence of radiation. Originality/value: Flow over a shrinking disk has received limited research focus, in contrast to the extensively studied axisymmetric flow problem over a diverse set of geometries such as flat surfaces, curved surfaces and cylinder. Hence, this study highlights the axisymmetric flow due to a shrinking disk under radiation influence, using hybrid nanofluids containing CuO and Ag. Upon additional analysis, it is evidently shows that only one of the solutions exhibits stability, making it a physically dependable choice in practical applications. The authors are very confident that the findings of this study are novel, with several practical uses of hybrid nanofluids in modern industry. © 2023, Emerald Publishing Limited.
Emerald Publishing
9615539
English
Article

author Waini I.; Jamrus F.N.; Roșca N.C.; Roșca A.V.; Pop I.
spellingShingle Waini I.; Jamrus F.N.; Roșca N.C.; Roșca A.V.; Pop I.
Dual solutions for axisymmetric flow and heat transfer due to a permeable radially shrinking disk in copper oxide (CuO) and silver (Ag) hybrid nanofluids with radiation effect
author_facet Waini I.; Jamrus F.N.; Roșca N.C.; Roșca A.V.; Pop I.
author_sort Waini I.; Jamrus F.N.; Roșca N.C.; Roșca A.V.; Pop I.
title Dual solutions for axisymmetric flow and heat transfer due to a permeable radially shrinking disk in copper oxide (CuO) and silver (Ag) hybrid nanofluids with radiation effect
title_short Dual solutions for axisymmetric flow and heat transfer due to a permeable radially shrinking disk in copper oxide (CuO) and silver (Ag) hybrid nanofluids with radiation effect
title_full Dual solutions for axisymmetric flow and heat transfer due to a permeable radially shrinking disk in copper oxide (CuO) and silver (Ag) hybrid nanofluids with radiation effect
title_fullStr Dual solutions for axisymmetric flow and heat transfer due to a permeable radially shrinking disk in copper oxide (CuO) and silver (Ag) hybrid nanofluids with radiation effect
title_full_unstemmed Dual solutions for axisymmetric flow and heat transfer due to a permeable radially shrinking disk in copper oxide (CuO) and silver (Ag) hybrid nanofluids with radiation effect
title_sort Dual solutions for axisymmetric flow and heat transfer due to a permeable radially shrinking disk in copper oxide (CuO) and silver (Ag) hybrid nanofluids with radiation effect
publishDate 2024
container_title International Journal of Numerical Methods for Heat and Fluid Flow
container_volume 34
container_issue 3
doi_str_mv 10.1108/HFF-09-2023-0537
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85180242000&doi=10.1108%2fHFF-09-2023-0537&partnerID=40&md5=eeacc9ba69f03bf01a8772cbad5c5191
description Purpose: This study aims to investigate the dual solutions for axisymmetric flow and heat transfer due to a permeable radially shrinking disk in copper oxide (CuO) and silver (Ag) hybrid nanofluids with radiation effect. Design/methodology/approach: The partial differential equations that governed the problem will undergo a transformation into a set of similarity equations. Following this transformation, a numerical solution will be obtained using the boundary value problem solver, bvp4c, built in the MATLAB software. Later, analysis and discussion are conducted to specifically examine how various physical parameters affect both the flow characteristics and the thermal properties of the hybrid nanofluid. Findings: Dual solutions are discovered to occur for the case of shrinking disk (λ < 0). Stronger suction triggers the critical values’ expansion and delays the boundary layer separation. Through stability analysis, it is determined that one of the solutions is stable, whereas the other solution exhibits instability, over time. Moreover, volume fraction upsurge enhances skin friction and heat transfer in hybrid nanofluid. The hybrid nanofluid’s heat transfer also heightened with the influence of radiation. Originality/value: Flow over a shrinking disk has received limited research focus, in contrast to the extensively studied axisymmetric flow problem over a diverse set of geometries such as flat surfaces, curved surfaces and cylinder. Hence, this study highlights the axisymmetric flow due to a shrinking disk under radiation influence, using hybrid nanofluids containing CuO and Ag. Upon additional analysis, it is evidently shows that only one of the solutions exhibits stability, making it a physically dependable choice in practical applications. The authors are very confident that the findings of this study are novel, with several practical uses of hybrid nanofluids in modern industry. © 2023, Emerald Publishing Limited.
publisher Emerald Publishing
issn 9615539
language English
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