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Effects of Double Volute on Performance of A Centrifugal Pump

원심펌프의 성능에 대한 더블 볼류트의 영향

  • Shim, Hyeon-Seok (Department of Mechanical Engineering, Graduate School, Inha University) ;
  • Heo, Man-Woong (Department of Mechanical Engineering, Graduate School, Inha University) ;
  • Kim, Kwang-Yong (Department of Mechanical Engineering, Inha University)
  • 심현석 (인하대학교 대학원 기계공학과) ;
  • 허만웅 (인하대학교 대학원 기계공학과) ;
  • 김광용 (인하대학교 기계공학과)
  • Received : 2015.05.26
  • Accepted : 2015.09.03
  • Published : 2016.02.01

Abstract

In this study, a parametric study of a centrifugal pump with double volute has been performed numerically using three-dimensional Reynolds-averaged Navier-Stokes equations. The shear stress transport model was selected as turbulence closure through turbulence model test. The finite volume method and unstructured grid system were used for the numerical analysis. The optimal grid system in the computational domain was determined through a grid dependency test. The expansion coefficient, circumferential and radial starting positions and length of divider were selected as the geometric parameters to be tested. And, the hydraulic efficiency and the radial thrust coefficient were considered as performance parameters. It was found that the radial thrust and hydrualic efficiency are more sensitive to the expansion angle and circumferential starting position of the divider than the other geometrical parameters.

Keywords

References

  1. Baun, D. O., Kostner, L., and Flack, R. D., 2000, "Effect of Relative Impeller-to-Volute Position on Hydraylic Efficiency and Static Radial Force Distribution in a Circular Volute Centrifugal Pump," Journal of Fluids Engineering, Vol. 122, No. 4, pp. 598-605. https://doi.org/10.1115/1.1287852
  2. Gonzalez, J., Parrondo, J., Santolaria, C., and Blanco, E., 2006, "Steady and Unsteady Radial Forces for a Centrifugal Pump With Impeller to Tongue Gap Variation," Journal of Fluids Engineering, Vol. 128, No. 3, pp. 454-462. https://doi.org/10.1115/1.2173294
  3. Jiang, W., Li, G., Liu, P., Zhang, L., and Qing, H., 2014, "Numerical Research of the Effect of the Outlet Diameter of Diffuser on the Performance and the Radial Force in a Single-Stage Centrifugal Pump," ASME 4th Joint USEuropean Fluids Engineering Division Summer Meeting, Chicago, Illinois, USA, Aug. 3-7, FEDSM2014-21299.
  4. Alemi, H., Nourbakhsh, S. A., Raisee, M., and Najafi, A. F., 2015, "Effects of Volute Curvature on Performance of a Low Specific-Speed Centrifugal pump at Design and Off-Design Conditions," Journal of Turbomachinery, Vol. 137, pp. 243-254.
  5. Stepanoff, A. J., 1957, Centrifugal and Axial Flow Pumps, Wiley, New York, USA.
  6. Baun, D. O. and Flack, R. D., 2003, "Effects of Volute Design and Number of Impller Blades on Lateral Impeller Forces and Hydraulic Performance," International Journal of Rotating Machinery, Vol. 9, No. 2, pp. 145-152. https://doi.org/10.1155/S1023621X03000137
  7. Kaupert, K. A. and Staubli, T., 1999, "The Unsteady Pressure Field in a High Specific Speed Centrifugal Pump Impeller-Part I : Influence of the Volute," Journal of Fluids Engineering, Vol. 121, No. 4, pp. 621-626. https://doi.org/10.1115/1.2823514
  8. Kurokawa, J., Fujii, T., Matsui, J., and Kitahora, T., 1997, "Experimental Determination of Flow Characteristics in Double Volute," The 5th Asian International Conference on Fluid Machinery, Seoul, Korea, Oct. 6-8, pp. 825-832.
  9. Kim, J. Y., Chung, K. N., and Kim, Y. K., 2011, "A Numerical Study of Pump Characteristics of a Concrete Volute Pump with Various Types of Volutes," ASME-JSME-KSME Joint Fluids Engineering Conference, Hamamatsu, Shizuoka, Japan, Jul. 24-29, AJK2011-06053.
  10. Pfleiderer, C., 1949, Centrifugal Pump for Liquids and Gases, Springer, Berlin, Germany.
  11. ANSYS CFX-15.0 Solver Theory, 2014, Ansys Inc.
  12. Menter, F. R., 1994, "Two-Equation Eddy-Viscosity Turbulence model for Engineering Applications," AIAA Journal, No. 32, Vol. 8, pp. 1598-1606. https://doi.org/10.2514/3.12149
  13. Lee, Y. G., Yuk, J. H., and Kang, M. H., 2004, "Flow Analysis of Fluid Machinery using CFX Pressure-Based Coupled and Various Turbulence model," The KSFM Journal of Fluid Machinery, Vol. 7, No. 5, pp. 82-90. https://doi.org/10.5293/KFMA.2004.7.5.082

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