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Numerical and experimental study of flow and heat transfer around a tube in cross-flow at low Reynolds number

journal contribution
posted on 2023-10-18, 10:03 authored by E. Buyruk, M. W. Johnson, Ieuan Owen
<p>A numerical and experimental study of the laminar flow and heat transfer characteristics of a cylinder in cross-flow is presented. The computational technique used is a stream function-vorticity formulation of the laminar flow steady state incompressible. Navier-Stokes and energy equations and uses a Gauss-Seidel over-relaxation technique to obtain stream function and temperature distributions. Calculations are presented for an isothermally heated single tube in a duct with different blockage ratios. The variation of local Nusselt number, pressure and also isotherm and streamline contours are predicted with Reynolds number of 120 and 390. For the Reynolds number of 390, the local Nusselt number distributions are shown to be similar to those obtained through measurement of the local heat flux from the surface of a tube using a micro-foil heat flow sensor. A numerical and experimental study of the laminar flow and heat transfer characteristics of a cylinder in cross-flow is presented. The computational technique used is a stream function-vorticity formulation of the laminar flow steady state incompressible Navier-Stokes and energy equations and uses a Gauss-Seidel over-relaxation technique to obtain stream function and temperature distributions. Calculations are presented for an isothermally heated single tube in a duct with different blockage ratios. The variation of local Nusselt number, pressure and also isotherm and streamline contours are predicted with Reynolds number of 120 and 390. For the Reynolds number of 390, the local Nusselt number distributions are shown to be similar to those obtained through measurement of the local heat flux from the surface of a tube using a micro-foil heat flow sensor.</p>

History

School affiliated with

  • School of Engineering (Research Outputs)

Publication Title

International Journal of Heat and Fluid Flow

Volume

19

Issue

3

Pages/Article Number

223-232

Publisher

Elsevier Science Inc, New York, NY, United States

ISSN

0142-727X

Date Submitted

2015-08-20

Date Accepted

1997-11-20

Date of First Publication

1999-03-01

Date of Final Publication

1999-03-01

ePrints ID

18272