Similarity solution and Runge Kutta method to a thermal boundary layer model at the entrance region of a circular tube: The Lévêque Approximation

dc.contributor.authorBelhocine, Alispa
dc.contributor.authorWan Omar, Wan Zaidispa
dc.date2018-01-01
dc.date.accessioned2019-09-19T21:09:26Z
dc.date.available2019-09-19T21:09:26Z
dc.descriptionIn the thermal entrance region, a thermal boundary layer develops and also reaches the circular tube center. The fully developed region is the zone in which the flow is both hydrodynamically and thermally developed. The heat flux will be higher near the inlet because the heat transfer coefficient is highest at the tube inlet where the thickness of the thermal boundary layer is zero and decreases gradually to the fully developed value. In this paper, the assumptions implicit in Leveque's approximation are re-examined, and the analytical solution of the problem with additional boundary conditions, for the temperature field and the boundary layer thickness through the long tube is presented. By defining a similarity variable, the governing equations are reduced to a dimensionless equation with an analytic solution in the entrance region. This report gives justification for the similarity variable via scaling analysis, details the process of converting to a similarity form, and presents a similarity solution. The analytical solutions are then checked against numerical solution programming by Fortran code obtained via using Runge-Kutta fourth order (RK4) method. Finally, others important thermal results obtained from this analysis, such as; approximate Nusselt number in the thermal entrance region was discussed in detail.en-US
dc.formatapplication/pdf
dc.formattext/xml
dc.identifierhttps://revistas.udistrital.edu.co/index.php/revcie/article/view/12506
dc.identifier10.14483/23448350.12506
dc.identifier.urihttp://hdl.handle.net/11349/16931
dc.languageeng
dc.languagespa
dc.publisherUniversidad Distrital Francisco José de Caldases-ES
dc.relationhttps://revistas.udistrital.edu.co/index.php/revcie/article/view/12506/pdf
dc.relationhttps://revistas.udistrital.edu.co/index.php/revcie/article/view/12506/14983
dc.rightsDerechos de autor 2017 ali belhocine, Wan Zaidi Wan Omares-ES
dc.rightshttps://creativecommons.org/licenses/by-sa/4.0es-ES
dc.sourceRevista Científica; Vol 1 No 31 (2018): enero-abril; 6-18en-US
dc.sourceRevista científica; Vol. 1 Núm. 31 (2018): enero-abril; 6-18es-ES
dc.source2344-8350
dc.source0124-2253
dc.subjectThermal entrance regionen-US
dc.subjectThermal boundary layeren-US
dc.subjectDimensionless variablesen-US
dc.subjectTemperatureen-US
dc.subjectNusselt numberen-US
dc.subjectRunge-Kutta methoden-US
dc.subjectRegión de entrada térmicaes-ES
dc.subjectcapa límite térmicaes-ES
dc.subjectvariables sin dimensiónes-ES
dc.subjecttemperaturaes-ES
dc.subjectnúmero de Nusseltes-ES
dc.subjectmétodo de Runge-Kuttaes-ES
dc.titleSimilarity solution and Runge Kutta method to a thermal boundary layer model at the entrance region of a circular tube: The Lévêque Approximationen-US
dc.typeinfo:eu-repo/semantics/article
dc.typeinfo:eu-repo/semantics/publishedVersion
dc.type.coarhttp://purl.org/coar/resource_type/c_6501

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