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Tytuł artykułu

On general-purpose turbulence models in CFD

Autorzy
Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The computational fluid dynamics (CFD) tools for various flow problems have become widespread nowadays, yet their use still needs attention and care. In particular, turbulence models are often a crucial part of flow computations undertaken with various software packages, either commercial, open-source or in-house. In the paper, an overview of available model categories is provided, together with some discussion of their advantages or drawbacks with respect to flow cases of interest.
Rocznik
Tom
Strony
45--62
Opis fizyczny
Bibliogr. 20 poz.
Twórcy
autor
  • The Szewalski Institute of Fluid-Flow Machinery of the Polish Academy of Sciences Fiszera 14, Centre Hydrodynamics, 80-231 Gdańsk, Poland
Bibliografia
  • [1] Aidun C.K., Clausen J.R.: Lattice-Boltzmann method for complex flows. Annu. Rev. Fluid Mech. 42(2010), 439–472.
  • [2] Badur J.: Numerical modeling of sustainable gas turbine combustion. IMP PAN Gdańsk (2003) (in Polish).
  • [3] Butterweck M.: Inverse design method for viscous flows in the streamfunction coordinates. PhD thesis, The Szewalski Institute of Fluid-Flow Machinery PASci, Gdańsk 2014 (in Polish).
  • [4] Casey M., Wintergerste T. (Eds.): Best Practice Guidelines: Quality and Trust in Industrial CFD. ERCOFTAC, 2000.
  • [5] Drobniak S.: Turbulence, from stochastic to deterministic approach. Transactions IFFM 110(2002), 103–114.
  • [6] Duan G., Chen B.: Large Eddy Simulation by particle method coupled with Sub Particle-Scale model and application to mixing layer flow.Appl. Math. Mod. 39(2015), 3135–3149.
  • [7] Elsner J.W.:, Flow Turbulence. PWN, Warszawa 1987 (in Polish).
  • [8] Gatski T.B., Hussaini M.Y., Lumley J.L. (Eds.): Simulation and Modeling of Turbulent Flows. Oxford University Press, 1996.
  • [9] Grucelski A., Pozorski J.: Lattice Boltzmann simulations of heat transfer in flow past a cylinder and in simple porous media. Int. J. Heat Mass Tran. 86(2015), 139-148.
  • [10] Kajzer A., Pozorski J., Szewc K.: Large-eddy simulations of 3D Taylor- Green vortex: comparison of Smoothed Particle Hydrodynamics, Lattice Boltzmann and Finite Volume methods. J. Phys.: Conf. Ser. 530(2014), art. 012019.
  • [11] Knorps M., Pozorski J., An inhomogeneous stochastic subgrid scale model for particle dispersion in Large-Eddy Simulation. In: Direct and Large-Eddy Simulation IX, 671–678, Springer, 2015.
  • [12] Krzemianowski Z., Puzyrewski R.: 3D computations of flow field in a guide vane blading designed by means of 2D model for a low head hydraulic turbine. J. Phys.: Conf. Ser. 530(2014), art. 012031.
  • [13] Launder B.E., Sandham N.D. (Eds.): Closure Strategies for Turbulent and Transitional Flows. Cambridge University Press, 2002.
  • [14] Manceau R.: Recent progress in the development of the Elliptic Blending Reynolds-stress model. Int. J. Heat Fluid Flow 51(2015), 195–220.
  • [15] Mayrhofer A., Laurence D., Rogers B.D, Violeau D.: DNS and LES of 3-D wall bounded turbulence using smoothed Particle Hydrodynamics. Int. J. Heat Fluid Fl. 51(2015), 195–220.
  • [16] Pope S.B.: Turbulent Flows. Cambridge University Press, 2000.
  • [17] Pozorski J.: Stochastic modeling of turbulent flows. Bulletin of IFFM PASci 536/1495/2004, Gdańsk 2004.
  • [18] Schneider A., Conrad D., Bohle M.: Lattice Boltzmann simulation of the flow field in pump intakes—a new approach. J. Fluids Eng. 137(2015), art. 031105.
  • [19] Violeau D.: Fluid Mechanics and the SPH Method. Oxford University Press, 2012.
  • [20] Wacławczyk M., Pozorski J., Minier J.P.: PDF computation of turbulent flows with a new near-wall model. Phys. Fluids 16(2004), 1410– 1422.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-22482786-26af-4653-9785-3eba206584a9
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