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Detached-eddy Simulation for Time-dependent Turbulent Cavitating Flows 被引量:10

Detached-eddy Simulation for Time-dependent Turbulent Cavitating Flows
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摘要 The Reynolds-averaged Navier-Stokes(RANS),such as the original k-ω two-equation closures,have been very popular in providing good prediction for a wide variety of flows with presently available computational resource.But for cavitating flows,the above equations noticeably over-predict turbulent production and hence effective viscosity.In this paper,the detached eddy simulation(DES) method for time-dependent turbulent cavitating flows is investigated.To assess the state-of-the-art of computational capabilities,different turbulence models including the widely used RANS model and DES model are conducted.Firstly,in order to investigate the grid dependency in computations,different grid sizes are adopted in the computation.Furthermore,the credibility of DES model is supported by the unsteady cavitating flows over a 2D hydrofoil.The results show that the DES model can effectively reduce the eddy viscosities.From the experimental validations regarding the force analysis,frequency and the unsteady cavity visualizations,more favorable agreement with experimental visualizations and measurements are obtained by DES model.DES model is better able to capture unsteady phenomena including cavity length and the resulting hydrodynamic characteristics,reproduces the time-averaged velocity quantitatively around the hydrofoil,and yields more acceptable and unsteady dynamics features.The DES model has shown to be effective in improving the overall predictive capability of unsteady cavitating flows. The Reynolds-averaged Navier-Stokes(RANS),such as the original k-ω two-equation closures,have been very popular in providing good prediction for a wide variety of flows with presently available computational resource.But for cavitating flows,the above equations noticeably over-predict turbulent production and hence effective viscosity.In this paper,the detached eddy simulation(DES) method for time-dependent turbulent cavitating flows is investigated.To assess the state-of-the-art of computational capabilities,different turbulence models including the widely used RANS model and DES model are conducted.Firstly,in order to investigate the grid dependency in computations,different grid sizes are adopted in the computation.Furthermore,the credibility of DES model is supported by the unsteady cavitating flows over a 2D hydrofoil.The results show that the DES model can effectively reduce the eddy viscosities.From the experimental validations regarding the force analysis,frequency and the unsteady cavity visualizations,more favorable agreement with experimental visualizations and measurements are obtained by DES model.DES model is better able to capture unsteady phenomena including cavity length and the resulting hydrodynamic characteristics,reproduces the time-averaged velocity quantitatively around the hydrofoil,and yields more acceptable and unsteady dynamics features.The DES model has shown to be effective in improving the overall predictive capability of unsteady cavitating flows.
出处 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2012年第3期484-490,共7页 中国机械工程学报(英文版)
基金 supported by National Natural Science Foundation of China (Grant No.11172040)
关键词 CAVITATION detached-eddy simulation unsteady cavitating flows cavitation,detached-eddy simulation,unsteady cavitating flows
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参考文献16

  • 1KNAPP R T, DAILY J W, HAMMITT F G Cavitation[M].New York: McGraw-Hill, 1970.
  • 2王福军,张玲,黎耀军,张志民.轴流式水泵非定常湍流数值模拟的若干关键问题[J].机械工程学报,2008,44(8):73-77. 被引量:54
  • 3KUBOTA A, KATO H, YAMAGUCHI H. A new modeling of cavitating flows: a numerical study of unsteady cavitation on a hydrofoil section[J]..Z Fluid Mech., 1992, 240: 59-96.
  • 4MERKLE C L, FENG J Z, BUELOW P E O. Computational modeling of the dynamics of sheet cavitation[C/CD]//Proc. Third International Symposium on Cavitation, Grenoble, France, 1998.
  • 5KUNZ R F, BOGER D A, STINEBRING D R A. A preconditioned Navier-Stokes method for two-phase flows with application to cavitation predition[J]. Comput. Fluid, 2000, 29:849- 875.
  • 6SINGHAL A K, ATHAVALE M M. Mathematical basis and validation of the full cavitation model[J]. Journal of Fluids Engineering, 2002, 124: 617-624.
  • 7COUTIER-DELGOSHA O, FORTES-PATELLA R, REBOUND J L. Evaluation of the turbulence model influence on the numerical simulations of unsteady cavition[J]. J. Fluids Eng., 2003, 125: 33-45.
  • 8JOHANSEN S T, WU J, SHYY W. Filter-based unsteady RANS computations[J]. Int. J.Heat and Fluid Flow, 2004, 25(1): 10-21.
  • 9SPALART P R, JOU W H, STRELETS M, et al. Comments on the feasibility of LES for wings, and on a hybrid RANS/LES approach, advances in DNS/LES[C]//First AFOSR International Conference on DNS/LES, Greyden, Columbus, OH, 1997, 2001 : 102-114.
  • 10GEORGE S. Constantinescu. LES and DES investigations of turbulent flow over a sphere[G]. AIAA 2000-0540.

二级参考文献11

  • 1WANG Fu-jun LI Yao-jun CONG Guo-hui WANG Wen-e WANG Hai-song.CFD SIMULATION OF 3D FLOW IN LARGE-BORE AXIAL-FLOW PUMP WITH HALF-ELBOW SUCTION SUMP[J].Journal of Hydrodynamics,2006,18(2):243-247. 被引量:37
  • 2GUO S J, MARUTA Y, OKAMOTO H, et al. Complex pressure fluctuations and vibrations in a pump-water tunnel system[C]//Proceedings of the 4th ASME/JSME Joint Fluids Engineering Conference: Volume 2, Part A, July 6-10, 2003, Honolulu, Hawaii. New York: ASME, 2003: 19-26.
  • 3SCHRAPP H, STARK U, GOLTZ I, et al. Structure of the rotor tip flow in a highly-loaded single-stage axial-flow pump approaching stall, part Ⅰ:Breakdown of the tip-clearance vortex[C]//Proceedings of the ASME Heat Transfer/Fluids Engineering Summer Conference, HT/FED 2004, July 11-15, 2004, Charlotte, NorthCarolina. New York: ASME, 2004:307-312.
  • 4WEGNER B, MALTSEV A, SCHNEIDER C, et al. Assessment of unsteady RANS in predicting swirl flow instability based on LES and experiments[J]. International Journal of Heat and Fluid Flow, 2004, 25(3): 528-536.
  • 5GOTO A, NOHMI M, SAKURAI T, et al. Hydrodynamic design system for pumps based on 3D CAD/CFD and inverse design method[J]. Journal of Fluids Engineering, Transactions of the ASME, 2002, 124(2): 329-335.
  • 6MULLER N, EINZINGER J, LEPACH T, et al. Applica- tion of a multi level CFD-technique for the design optimisation of hydraulic machinery bladings[C] //Proceedings of the ASME Heat Transfer/Fluids Engineering Summer Conference, HT/FED 2004, July l 1-15, 2004, Charlotte, North Carolina. New York: ASME, 2004: 601-608.
  • 7WHITE J D, HOLLOWAY A G L, GERBER A G. Predicting turbine performance of high specific speed pumps using CFD[C]//Proceedings of ASME Fluids Engineering Division Summer Conference, FEDSM2005, 2005, June 19-23, 2005, Houston. New York: ASME, 2005: 125-131.
  • 8NILSSON H, DAVIDSON L. Validations of CFD against detailed velocity and pressure measurements in water turbine runner flow[J]. International Journal for Numerical Methods in Fluids, 2003, 41 : 863-879.
  • 9FERZIGER J H, PERIC M. Computational methods for fluid dynamics [M]. 3rd ed. Berlin: Springer-Verlag, 2002.
  • 10MICHELASSI V, WISSINK J G, RODI W. Direct numerical simulation, large eddy simulation and unsteady Reynolds-averaged Navier-Stokes simulations of periodic unsteady flow in a low-pressure turbine cascade: A comparison[J]. Journal of Power and Energy, 2003, 217(4): 403-412.

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