An analytical study of the early stages of unsteady free convective flow from a differentially heated rotating sphere at large Grashof numbers
This research investigates the unsteady free convective flow of a viscous incompressible fluid from a differentially heated rotating sphere. The flow is assumed to remain laminar and to possess equatorial and azimuthal symmetry. The governing Navier-Stokes and energy equations are posed in terms of...
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Published in | International journal of computational methods and experimental measurements Vol. 7; no. 1; pp. 57 - 67 |
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Main Author | |
Format | Journal Article |
Language | English |
Published |
Southampton
W I T Press
01.07.2018
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Subjects | |
Online Access | Get full text |
ISSN | 2046-0546 2046-0554 |
DOI | 10.2495/CMEM-V7-N1-57-67 |
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Abstract | This research investigates the unsteady free convective flow of a viscous incompressible fluid from a differentially heated rotating sphere. The flow is assumed to remain laminar and to possess equatorial and azimuthal symmetry. The governing Navier-Stokes and energy equations are posed in terms of a scaled stream function - vorticity formulation and are solved subject to no-slip and specified surface temperature conditions. At t = 0 an impulsive heat flux is applied in the form of a jump in surface temperature. An asymptotic solution valid for large Grashof numbers and small times following the impulsive startup is constructed. Two small parameters have been identified and based on this the flow variables are expanded in a double series in powers of these parameters. The non-zero leading-order terms in the asymptotic expansions have been determined analytically and the corresponding heat transfer coefficient has been found. Future work will involve obtaining numerical solutions. |
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AbstractList | This research investigates the unsteady free convective flow of a viscous incompressible fluid from a differentially heated rotating sphere. The flow is assumed to remain laminar and to possess equatorial and azimuthal symmetry. The governing Navier-Stokes and energy equations are posed in terms of a scaled stream function - vorticity formulation and are solved subject to no-slip and specified surface temperature conditions. At t = 0 an impulsive heat flux is applied in the form of a jump in surface temperature. An asymptotic solution valid for large Grashof numbers and small times following the impulsive startup is constructed. Two small parameters have been identified and based on this the flow variables are expanded in a double series in powers of these parameters. The non-zero leading-order terms in the asymptotic expansions have been determined analytically and the corresponding heat transfer coefficient has been found. Future work will involve obtaining numerical solutions. |
Author | D’Alessio, S.J.D. |
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ContentType | Journal Article |
Copyright | 2018. Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the associated terms available at https://www.witpress.com/journals/cmem or in accordance with the terms at https://creativecommons.org/licenses/by/4.0/ (the “License”), if applicable |
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DOI | 10.2495/CMEM-V7-N1-57-67 |
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SubjectTerms | Asymptotic methods Asymptotic series Computational fluid dynamics Convective flow Fluid flow Grashof number Heat flux Heat transfer coefficients Incompressible flow Incompressible fluids Order parameters Parameter identification Rotating spheres Rotation Stream functions (fluids) Surface temperature Temperature Vorticity |
Title | An analytical study of the early stages of unsteady free convective flow from a differentially heated rotating sphere at large Grashof numbers |
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