Numerical Analysis of Laminar Mixed Convection within a Complex Geometry
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 32807
Numerical Analysis of Laminar Mixed Convection within a Complex Geometry

Authors: Y. Lasbet, A. L. Boukhalkhal, K. Loubar

Abstract:

The study of mixed convection is, usually, focused on the straight channels in which the onset of the mixed convection is well defined as function of the ratio between Grashof number and Reynolds number, Gr/Re. This is not the case for a complex channel wherein the mixed convection is not sufficiently examined in the literature. Our paper focuses on the study of the mixed convection in a complex geometry in which our main contribution reveals that the critical value of the ratio Gr/Re for the onset of the mixed convection increases highly in the type of geometry contrary to the straight channel. Furthermore, the accentuated secondary flow in this geometry prevents the thermal stratification in the flow and consequently the buoyancy driven becomes negligible. To perform these objectives, a numerical study in complex geometry for several values of the ratio Gr/Re with prescribed wall heat flux (H2), was realized by using the CFD code.

Keywords: Complex geometry, heat transfer, laminar flow, mixed convection, Nusselt number.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1339141

Procedia APA BibTeX Chicago EndNote Harvard JSON MLA RIS XML ISO 690 PDF Downloads 1708

References:


[1] L. Elliott, D. B. Ingham and J. D. Wood, “Mixed Convection Flow of Newtonian and Non-Newtonian Fluids in a Horizontal Rectangular Duct,” Numerical Heat Transfer Part A, vol. 32, pp. 831-860,1997.
[2] A. Barletta, E. Rossi di Schio and E. Zanchini, “Combined forced and free flow in a vertical rectangular duct with prescribed wall heat flux,” International Journal of Heat and Fluid Flow, vol. 24, pp. 874-887,2003.
[3] H. Robin, A.M. Stremler, K.V. Sharp, M.G. Olsen, J.G. Santiago, R.J. Adrian, H. Aref and D.J. Beebe, “Passive mixing in a three-dimensional serpentine microchannel,” Journal of Micro electro mechanical Systems, vol 9(2), 190–197, 2000.
[4] D. Beebe, R. Adrian., M. Olsen, M. Stremler, H. Aref and B. Jo, “Passive mixing in micro-channels: fabrication and flow experiments,” Mécanique et Industries, vol 2,334–348, 2001.
[5] R.K. Shah and A.L. London, “Laminar forced convection in ducts,” Academic Press, New York, 1978.
[6] M. Spiga and G.L. Morini, “Nusselt numbers in laminar flow for H2 boundary conditions,” Int. J. Heat Mass Transfer, vol 39, 1165–1174, 1996.
[7] Y. Lasbet, B. Auvity, C. Castelain and H. Peerhossaini, “Thermal and Hydrodynamic Performances of Chaotic Mini-Channel: Application to the Fuel Cell Cooling,” Heat Transfer Engineering, Vol 28(8–9), 795–803, 2007.
[8] Y. Lasbet, B. Auvity, C. Castelain and H. Peerhossaini, “A chaotic heat-exchanger for PEMFC cooling applications,” Journal of Power Sources, Vol 156, 114–118, 2006.