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A large eddy based lattice-Boltzmann simulation of velocity distribution in an open channel flow with rigid and flexible vegetation

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Języki publikacji
EN
Abstrakty
EN
The large eddy simulation method, based on a lattice-Boltzmann algorithm, was used to compute the vertical velocity profile in an open channel flow with submerged and emerged vegetation. The numerical method is characterized by the relatively short time of computation and low complexity. On the other hand, it allows a more realistic description of the vegetation properties relative to the methods commonly used in 1-D numerical models. For the proper conditions, the method developed in this work gives results similar to other numerical methods. These results are also in good agreement with the experimental data presented in other papers.
Czasopismo
Rocznik
Strony
180--198
Opis fizyczny
Bibliogr. 33 poz.
Twórcy
autor
  • Faculty of Chemical and Process Engineering, Warsaw University of Technology, Warszawa Poland
Bibliografia
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  • 4.Eagleson, P.S. (1970), Dynamical Hydrology, McGraw-Hill, New York. Fernandino, M., K. Beronov, and T. Ytrehus (2009), Large eddy simulation of turbulent open duct flow using a lattice Boltzmann approach, Math. Comput. Simulat. 79, 5, 1520-1526, DOI: 10.1016/j.matcom.2008.07.001.
  • 5.Gac, J.M. (2011), Numerical modeling of the water velocity profiles in open channel flow with submerged rigid stems by use of lattice Boltzmann method, Sci. Rev. Eng. Env. Sci. 54, 294-303 (in Polish).
  • 6.Gac, J.M., and L. Gradoń (2011), A two-dimensional modeling of binary coalescence time using the two-color lattice-Boltzmann method, J. Aerosol Sci. 42, 5, 355-363, DOI: 10.1016/j.jaerosci.2011.02.004.
  • 7.Huai, W.X., Y.H. Zeng, Z.G. Xu, and Z.H. Yang (2009), Three-layer model for vertical velocity distribution in open channel flow with submerged rigid vegetation, Adv. Water Resour. 32, 4, 487-492, DOI: 10.1016/j.advwatres. 2008.11.014.
  • 8.Jiménez-Hornero, F.J., J.V. Giráldez, A.M. Laguna, S.J. Bennett, and C.V. Alonso (2007), Modelling the effects of emergent vegetation on an open-channel flow using a lattice model, Int. J. Numer. Method. Fluid 55, 7, 655-672, DOI: 10.1002/fld.1488.
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  • 10.Kubrak, E., J. Kubrak, and P.M. Rowiński (2008), Vertical velocity distributions through and above submerged, flexible vegetation, Hydrolog. Sci. J. 53, 4, 905-920, DOI: 10.1623/hysj.53.4.905.
  • 11.Kubrak, E., J. Kubrak, and P.M. Rowiński (2012), Influence of a method of evaluation of the curvature of flexible vegetation elements on vertical distributions of flow velocities, Acta Geophys. 60, 4, 1098-1119, DOI: 10.2478/s11600-011-0077-2.
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  • 14.López, F., and M.H. García (2001), Mean flow and turbulence structure of openchannel flow through non-emergent vegetation, J. Hydraul. Eng. 127, 5, 392-402, DOI: 10.1061/(ASCE)0733-9429(2001)127:5(392).
  • 15.Mayer, G., J. Páles, and G. Házi (2007), Large eddy simulation of subchannels using the lattice Boltzmann method, Ann. Nucl. Energy 34, 1-2, 140-149, DOI: 10.1016/j.anucene.2006.10.002.
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  • 22.Righetti, M. (2008), Flow analysis in a channel with flexible vegetation using double- averaging method, Acta Geophys. 56, 3, 801-823, DOI: 10.2478/s11600-008-0032-z.
  • 23.Righetti, M., and A. Armanini (2002), Flow resistance in open channel flows with sparsely distributed bushes, J. Hydrol. 269, 1-2, 55-64, DOI: 10.1016/S0022-1694(02)00194-4.
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  • 27.Stoesser, T., G.P. Salvador, W. Rodi, and P. Diplas (2009), Large eddy simulation of turbulent flow through submerged vegetation, Transp. Porous Med. 78, 3, 347-365, DOI: 10.1007/s11242-009-9371-8.
  • 28.Sukhodolov, A., and T. Sukhodolova (2006), Evolution of mixing layers in turbulent flow over submersed vegetation: Field experiments and measurement study, In: R.M.L. Ferreira, E.C.T.L. Alves, J.G.A.B. Leal, and A.H. Cardoso (eds.), Proc. Int. Conf. on Fluvial Hydraulics “River Flow 2006”, 6-8 September 2006, Lisbon, Portugal, 525-534.
  • 29.Wang, C.-H., and J.-R. Ho (2011), A lattice Boltzmann approach for the non- Newtonian effect in the blood flow, Comput. Math. Appl. 62, 1, 75-86, DOI: 10.1016/j.camwa.2011.04.051.
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Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-6072caf6-cdc7-413e-a684-838dd916f311
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