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A New Approach in Numerical Assessment of the Cavitation Behaviour of Centrifugal Pumps

  • Stuparu, Adrian (Department of Hydraulic Machinery, Politehnica University of Timisoara) ;
  • Susan-Resiga, Romeo (Department of Hydraulic Machinery, Politehnica University of Timisoara) ;
  • Anton, Liviu Eugen (Department of Hydraulic Machinery, Politehnica University of Timisoara) ;
  • Muntean, Sebastian (Centre of Advanced Research in Engineering Science, Romanian Academy-Timisoara Branch)
  • Accepted : 2010.12.19
  • Published : 2011.03.31

Abstract

The paper presents a new method for the analysis of the cavitation behaviour of hydraulic turbomachines. This new method allows determining the coefficient of the cavitation inception and the cavitation sensitivity of the turbomachines. We apply this method to study the cavitation behaviour of a large storage pump. By plotting in semi-logarithmic coordinates the vapour volume versus the cavitation coefficient, we show that all numerical data collapse in an exponential manner. By analysis of the slope of the curve describing the evolution of the vapour volume against the cavitation coefficient we determine the cavitation sensitivity of the pump for each operating point.

Keywords

References

  1. Anton, I., 1985, "Cavitation," Romanian Academy Publishing House, Bucharest, Vol. 2 (in Romanian).
  2. Bernad, S., Resiga, R., Muntean, S., and Anton, I., 2007, "Cavitation Phenomena in Hydraulic Valves. Numerical Modelling," Proceeding of the Romanian Academy, Series A, Vol. 8, No. 2.
  3. Manninnen, M., Taivassalo, V., Kallio, S., 1996, "On the mixture model for multiphase flow," VTT Publications 288, Technical research centre of Finland.
  4. Li, S. C., 2000, "Cavitation of Hydraulic Machinery," Imperial College Press.
  5. Singhal, A.K., Li, H.Y., Athavale, M.M., Jiang, Y., 2001, "Mathematical basis and validation of the full cavitation model," ASME FEDSM'01, New Orleans, Louisiana.
  6. FLUENT 6.3 User's Guide, 2002, Fluent Incorporated.
  7. Susan-Resiga, R., Muntean, S., Bernad, S., and Anton, I., 2003, "Numerical investigation of 3D cavitating flow in Francis turbines," in Proceedings of the International Conference on Modelling Fluid Flow (CMFF03), Budapest, Hungary. Vol. 2, pp. 950-957.
  8. Hirschi, R., Dupont, P. H., Avellan, F., Favre, J.-N., Guelich, J.-F., and Parkinson, E., 1998, "Centrifugal pump performance drop due to leading edge cavitation: numerical predictions compared with model tests," Journal of Fluids Engineering, Vol. 120, No. 6, pp. 705-711. https://doi.org/10.1115/1.2820727
  9. Pouffary, B., Patella, R.F., Rebound, J.-L., Lambert, P.-A., 2008, "Numerical Simulation of 3D Cavitating Flows: Analysis of Cavitation Head Drop in Turbomachinery," Journal of Fluids Engineering, Vol. 130, pp. 061301-1 - 061301-10. https://doi.org/10.1115/1.2917420
  10. Gonzalo Flores, N., Goncalves, E., Fortes Patella, R., Rolland, J., and Rebattet, C., 2008, "Head Drop of a Spatial Turbopump Inducer," Journal of Fluids Engineering, Vol. 130, Paper 111301. https://doi.org/10.1115/1.2969272
  11. Ait-Bouziad, Y., 2006, "Physical Modelling of Leading Edge Cavitation: Computational Methodologies and Application to Hydraulic Machinery," PhD Thesis, EPFL, Lausanne, Switzerland.
  12. Schiller, L., Naumann, Z., 1935, "Z. Ver. Deutsch. Ing.," pp. 77-318.
  13. Stuparu, A.C., Susan-Resiga, R., Muntean, S., Anton, L.E., 2010, "Numerical Investigation of the Cavitational Behaviour into a Storage Pump at Off Design Operating Points," in Proceedings of the 25th IAHR Symposium on Hydraulic Machines and Systems, IOP Conference Series: Earth and Environmental Science, Timisoara, Romania, Vol. 12, DOI: 10.1088/1742-6596/12/1/011003.

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