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CFD for turbomachinery applications – fifteen years experience with code FlowER

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Konferencja
International Symposium SYMKOM Compressor & Turbine Flow Systems, Treory & Application Areas (15-17.09.2008; Łódź; Polska)
Języki publikacji
EN
Abstrakty
EN
The paper presents shortly current state of numerical simulation of turbomachinery flows. The choice of flow model, turbulence modelling and numerical technique is considered by the example of CFD solver FlowER. The numerical results for turbomachinery flows concerning unsteady effects, flow leakages, film-cooling and blade shape optimization are shown.
Słowa kluczowe
Twórcy
  • The Podgorny Institute for Mechanical Engineering Problems of National Academy of Sciences of Ukraine, Kharkov, Ukraine
Bibliografia
  • [1] ANSYS CFX, http://www.ansys.com/Products/cfx.asp.
  • [2] Baldwin, B.S. and Lomax, H., 1978, Thin layer approximation and algebraic model for separated turbulent flows, AIAA Paper, No 257, pp. 1–8.
  • [3] Demeulenaere, A. and Braembussche, R.V., 1996, Three-dimensional inverse method for turbomachinery blading design, Computational Fluid Dynamics '96:, Proceedings, 3rd ECCOMAS Computational Fluid Dynamics Conf., J.-A.Desideri et al., eds, John Willey & Sons Ltd, Chichester, West Sussex, England, pp. 965–971.
  • [4] Egorov, I. N., 1998, Indirect Optimization Method on the Basis of Self-Organization, Proceedings, Optimization Techniques and Applications (ICOTA’98), L. Caccetta et al., eds, Curtin University of Technology, Perth, Australia, Vol. 2, pp. 683-691.
  • [5] Fluent, http://www.fluent.com/
  • [6] Goldberg, D.E., 1989, Genetic Algorithms in Search, Optimization and Machine Learning, Addison-Wesley Publishing Company Inc. – Massachusetts, 408 p.
  • [7] Harten, A. and Osher, S., 1987, Uniformly high-order accurate non-oscilla¬tory schemes, SIAM J. Num. Analysis, Vol. 24, No 2, pp. 279–309.
  • [8] Hathaway, M.D., Chriss, R.M., Wood, J.R. and Strazisar, A.J., 1995, Laser Anemometer Measurements of the Three-Dimensional Rotor Flow Field in the NASA Low-Speed Centrifugal Compressor, NASA Technical Memorandum 4481, 21 p.
  • [9] Hodson, H.P. and Dominy R.G., 1987, Three-dimensional flow in a low-pressure turbine cascade at its design condition, J. of Turbomachinery, Vol. 109, No 2, pp. 116–128.
  • [10] Jameson, A., Schmidt, W. and Turkel E., 1981, Numerical simulation of the Euler equations by finite volume method using Runge–Kutta time-stepping schemes, AIAA Pap., No 81-1259, 10 p.
  • [11] Kang, S. and Hirsch, Ch., 1999, Numerical Investigation of the Three-Dimensional Flow in NASA Low Speed Centrifugal Compressor Impeller, Proceedings, International Symposium on Aero-Thermodynamics of Interal Flows, Dresden University of Technology, ed., Dresden, Germany, pp. 301–336.
  • [12] Kiock, R., Lehtaus, F., Baines, N.C. and Sievering, C.H., 1986, The Transonic Flow Through a plane Turbine Cascade as Measured in Four European Wind Tunnels, ASME Pap., No 108, pp. 277–284.
  • [13] Lampart, P. and Yershov, S., 2003, Direct Constrained Computational Fluid Dynamics Based Optimization of Three-Dimensional Blading for the Exit Stage of a Large Power Steam Turbine, Transactions of ASME. J. Engineering for Gas Turbines and Power, Vol. 125, No. 1, pp. 385–390.
  • [14] Langston, L.S., Nice, M.L. and Hooper, R.M., 1977, Three-dimensional flow within a turbine blade passage, Transactions of ASME J. Engineering for Power, Vol. 99, No 1,pp. 21–28.
  • [15] Lumley, J.L., 1978, Computational modeling of Turbulent Flows, Adv. Appl. Mech., Vol. 18, pp. 123–176.
  • [16] Marcinkowski, S., Gardzilewicz, A. and Głuch, J., 1999, Results of extended flow measurements in the LP part of 18K370 steam turbine, S.Marcinkowski, Rep. Diagnostyka Maszyn, No 11/99, 59 p. (in Polish).
  • [17] Menter, F.R., 1994, Two-equation eddy viscosity turbulence models for engineering applications, AIAA J., Vol. 32, No 11, pp. 1299–1310.
  • [18] Nelder, J.A. and Mead, R., 1965, A simplex method for function minimization, The Computer Journal, Vol. 7, No 1, pp. 308–313.
  • [19] Numeca International, http://www.numeca.com/
  • [20] Pope, S.B., 2003, Turbulent Flows, Cambridge University Press, 771 p.
  • [21] Spalart, P.R. and Allmaras, S.R., 1994, A one-equation turbulence model for aerodynamic flows, La Recherche Aerospatiale, Vol. 1, No 1, pp. 5–21.
  • [22] Torre, A. and Cecchi, S., 2007, Latest Developments and Perspectives in the Optimised Design of LP Steam Turbines at ANSALDO, Proceedings, 7th European Conference on Turbomachinery Fluid Dynamics and Thermodynamics, K.D. Papailiou et al., eds, Athens, Greece, pp. 19–40.
  • [23] Wilcox, D.C., 2004, Turbulence modeling for CFD, 2nd ed., Palm Drive: DCW Industries Inc., 540 p.
  • [24] Yershov, S.V., 1994, Quasi-monotonous ENO scheme of high accuracy for Euler and Navier-Stokes equations, Matematicheskoye Modelirovaniye, Vol. 6, No 11, pp.58–64 (in Russian).
  • [25] Yershov, S.V. and Rusanov, A.V., 1996, The Application Program Package FlowER® For The Calculation of 3D Viscous Flows Through Multi Stage Turbomachines, Certificate of State Registration of Copyright, Ukrainian State Agency of Copyright and Related Rights, ΠΑ № 77 (in Ukrainian).
  • [26] Yershov, S.V., 2007, Solution of gasdynamic equations with iterative implicit scheme, Bulletin of Karazin Kharkov National University, “Mathematical simulation. Information technologies. Computer-aided systems”, No 775, iss. 7, pp. 159–173;
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-5d3f2586-06cb-4d09-aa30-5762d162b0c0
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