Цитирование: | 1. S.G. Cherny, D.V. Chirkov, D.V. Bannikov, V.N. Lapin, V.A. Skorospelov, I. Eshkunova, and A. Avdushenko, 3D numerical simulation of transient processes in hydraulic turbines, in: IAHR Symp. on Hydraulic Machinery and Systems, Timisoara, Romania, 20–24 September, 2010.
2. G.D. Ciocan, M.S. Iliescu, T.C. Vu, B. Nennemann, and F. Avellan, Experimental study and numerical simulation of the FLINDT draft tube rotating vortex, J. Fluids Engng., 2007, Vol. 129, No. 2, P. 146–158.
3. P. Doerfler, System dynamics of the Francis turbine half load surge, in: IAHR Symp. on Hydraulic Machinery and Systems, Amsterdam, Netherlands, 1982.
4. J. Koutnik, C. Nicolet, G.A. Schohl, and F. Avellan, Overload surge event in a pumped storage power plant, in: IAHR Symp. on Hydraulic Machinery and Systems, Yokohama, Japan, 2006.
5. C. Nicolet, Hydroacoustic modelling and numerical simulation of unsteady operation of hydroelectric systems, PhD thesis (EPFL № 3751, http://library.epfl.ch/theses/?nr=3751), 2007.
6. F. Flemming, J. Foust, J. Koutnik, and R.K. Fisher, Overload surge investigation using CFD data, in: IAHR Symp. on Hydraulic Machinery and Systems, Foz do Iguassu, Brazil, 2008.
7. S. Alligne, C. Nicolet, P. Allenbach, B. Kawkabani, J.J. Simond, and F. Avellan, Influence of the vortex rope location of a Francis turbine on the hydraulic system stability, in: IAHR Symp. on Hydraulic Machinery and Systems, Foz do Iguassu, Brazil, 2008.
8. S. Alligne, P. Maruzewski, T. Dinh, B. Wang, A. Fedorov, J. Iosfin, and F. Avellan, Prediction of a Francis turbine prototype full load instability from investigations on the reduced scale model, in: IAHR Symp. on Hydraulic Machinery and Systems, Timisoara, Romania, 2010.
9. P.K. Doerfler, M. Keller, and O. Braun, Francis full-load surge mechanism identified by unsteady 2-phase CFD, in: IAHR Symp. on Hydraulic Machinery and Systems, Timisoara, Romania, 2010.
10. L.V. Panov, D.V. Chirkov, and S.G. Cherny, Numerical algorithms for modeling cavitational flow of a viscous fluid, Computational Technologies, 2011, Vol. 16, No. 4, P. 96–113.
11. L.V. Panov, D.V. Chirkov, S.G. Cherny, I.M. Pylev, and A. A. Sotnikov, Numerical simulation of steady cavitating flows of viscous fluid in a Francis turbine, Themophysics and Aeromechanics, 2012, Vol. 19, No. 3, P. 415–427.
12. A.Yu. Avdyushenko, S.G. Cherny, and D.V. Chirkov, Numerical algorithm for modelling three-dimensional flows of an incompressible fluid using moving grids, Computational Technologies, 2012, Vol. 17, No. 6, P. 3–25.
13. A.K. Singhal, N. Vaidya, and A.D. Leonard, Multi-dimensional simulation of cavitating flows using a PDF model for phase change, ASME Fluids Engng. Division Summer Meeting, ASME Paper FEDSM97-3272, 1997.
14. P.J. Zwart, A.G. Gerber, and T.A. Belamri, Two-phase flow model for predicting cavitation dynamics, in: ICMF 2004 Int. Conf. on Multiphase Flow Yokohama, Japan, May 30–June 3, 2004. Paper No. 152.
15. Y.S. Chen and S.W. Kim, Computation of turbulent flows using an extended k-e turbulence closure model, NASA CR-179204, 1987.
16. S.G. Cherny, D.V. Chirkov, V.N. Lapin, V.A. Skorospelov, and S.V. Sharov, Numerical Simulation of Flows in Turbine Machinery, Nauka, Novosibirsk, 2006.
17. IEC Standard 60193, IEC: Intern. Electrotechnical Commission, Hydraulic turbines, storage pumps, and pumpturbines, Model acceptance tests, Publication data: 1999-11-01.
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