UFR 4-10 References: Difference between revisions

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16.  L.Davidson. Computation of natural-convection flow in a square cavity, in ''Turbulent Natural Convection in Enclosures, Proc. Eurotherm Seminar'' ''No. 22'', R.A.W.M.Henkes and C.J.Hoogendoorn (Eds.), 45-53, 1993.
16.  L.Davidson. Computation of natural-convection flow in a square cavity, in ''Turbulent Natural Convection in Enclosures, Proc. Eurotherm Seminar'' ''No. 22'', R.A.W.M.Henkes and C.J.Hoogendoorn (Eds.), 45-53, 1993.


17.  I.Demird&#009E;ić, Ž.Lilek and M.Perić. Fluid flow and heat transfer test problems for non­orthogonal grids: benchmark solutions. ''Int. J. Numerical Methods in Fluids'', Vol. 15, 329­354, 1992.
17.  I.Demirdžić, Ž.Lilek and M.Perić. Fluid flow and heat transfer test problems for non­orthogonal grids: benchmark solutions. ''Int. J. Numerical Methods in Fluids'', Vol. 15, 329­354, 1992.


18.  G.De Vahl Davis. Natural convection of air in a square cavity: a benchmark numerical solution. ''Int. J. Numerical Methods in Fluids'', Vol. 3, 249­264, 1983.
18.  G.De Vahl Davis. Natural convection of air in a square cavity: a benchmark numerical solution. ''Int. J. Numerical Methods in Fluids'', Vol. 3, 249­264, 1983.

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Natural convection in simple closed cavity

Underlying Flow Regime 4-10               © copyright ERCOFTAC 2004


References

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32. K.Hanjalić and S.Vasić. Computation of turbulent natural convection in rectangular enclosures with an algebraic flux model. Int. J. Heat and Mass Transfer, Vol. 36, 3603-3624, 1993.

33. K.Hanjalić, S.Kenjereš and F.Durst. Natural convection in partitioned two-dimensional enclosures at higher Rayleigh numbers. Int. J. Heat and Mass Transfer, Vol. 39, No. 7, 1407-1427, 1996.

34. R.A.W.M.Henkes and C.J.Hoogendoorn. Comparison of turbulence models for the natural convection boundary layer along a heated vertical plate. Int. J. Heat and Mass Transfer, Vol. 32, 157-169, 1989.

35. R.A.W.M.Henkes and C.J.Hoogendoorn. Numerical determination of wall functions for the turbulent natural convection boundary layer. Int. J. Heat and Mass Transfer, Vol. 33, 1087-1097, 1990.

36. M.Hortmann, M.Perić and G.Scheuerer. Finite volume multigrid prediction of laminar natural convection: benchmark solutions. Int. J. Numerical Methods in Fluids, Vol. 11, 189­207, 1990.

37. J.A.C.Humphrey and W.M.To. Numerical simulation of buoyant, turbulent flow - II. Free and mixed convection in a heated cavity. Int. J. Heat and Mass Transfer, Vol. 29, 593-610, 1986.

38. N.Z.Ince and B.E.Launder. On the computation of buoyancy-driven turbulent flows in rectangluar enclosures. Int. J. Heat and Fluid Flow, Vol. 10:2, 110-117, 1989.

39. R.J.A.Janssen and R.A.W.M.Henkes. Accuracy of finite­volume discretizations for the bifurcating natural­convection flow in a square cavity. Numerical Heat Transfer, Part B, 24:191­207, 1993.

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© copyright ERCOFTAC 2004



Contributors: Nicholas Waterson - Mott MacDonald Ltd


Front Page

Description

Test Case Studies

Evaluation

Best Practice Advice

References