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Backflow Vortex Cavitation and Its Effects on Cavitation Instabilities

  • Yamamoto, Kazuyoshi (Center for Research and Investigation of Advanced Science and Technology, Japan Advanced Institute of Science and Technology) ;
  • Tsujimoto, Yoshinobu (Engineering Science, Osaka University)
  • 투고 : 2008.10.17
  • 심사 : 2008.11.06
  • 발행 : 2009.03.01

초록

Cavitation instabilities in turbo-machinery such as cavitation surge and rotating cavitation are usually explained by the quasi-steady characteristics of cavitation, mass flow gain factor and cavitation compliance. However, there are certain cases when it is required to take account of unsteady characteristics. As an example of such cases, cavitation surge in industrial centrifugal pump caused by backflow vortex cavitation is presented and the importance of the phase delay of backflow vortex cavitation is clarified. First, fundamental characteristics of backflow vortex structure is shown followed by detailed discussions on the energy transfer under cavitation surge in the centrifugal pump. Then, the dynamics of backflow is discussed to explain a large phase lag observed in the experiments with the centrifugal pump.

키워드

참고문헌

  1. Yokota, K., Kuwahara,K., Kataoka, D., Tsujimoto, Y., and Acosta, A., 1999, A Study of Swirling Backflow and VortexStructure at the Inlet of an Inducer, JSME International Journal, Ser.B, Vol.42, No.3, pp. 451-459.
  2. Yokota, K., Mitsuda, K., Tsujimoto, Y, and Kato, C., “A Study of Vortex Structure in the Shear Layer between Main Flow andSwirling Backflow, 2004, JSME International Journal, Ser. B., Vol.47, No.3, pp. 541-548. https://doi.org/10.1299/jsmeb.47.541
  3. Milne-Thomson, Theoretical Hydrodynamics, 5th Ed., Macmillan & Co Ltd.
  4. Yamamoto, K., 1990, Instability in a Cavitating Centrifugal Pump (1st Report, Classification of Instability Phenomena &Vibration Characteristics), Trans. JSME (in Japanese), Ser.B, Vol.56, No.523, pp. 82-89.
  5. Yamamoto, K., 1990, Instability in a Cavitating Centrifugal Pump (2nd Report, Delivery of Mechanical Energy duringOscillation), Trans. JSME (in Japanese), Ser.B, Vol.56, No.523, pp. 90-96.
  6. Yamamoto, K., 1990, Instability in a Cavitating Centrifugal Pump (3rd Report, Mechanism of Low-Cycle System Oscillation),Trans. JSME (in Japanese), Ser.B, Vol.58, No.545, pp. 180-186.
  7. Tsujimoto,Y., Kamijo, K., and Brennen, C.E., 2001, Unified Treatment of Instabilities in Turbomachines, AIAA Journal ofPropulsion and Power, Vol.17, No.3, pp. 636-643. https://doi.org/10.2514/2.5790
  8. Brennen, C.E., and Acosta, A.J., 1976, The Dynamic Transfer Function for a Cavitating Inducer, ASME Journal of FluidsEngineering, Vol.78, No.2, pp. 182-191.
  9. Qiao, X., Horiguchi, H., and Tsujimoto, Y., 2007, Response of Backflow to Flow Rate Fluctuations, ASME Journal of FluidsEngineering, Vol.129, No.1, pp. 350-357. https://doi.org/10.1115/1.2427081
  10. Yamanishi, N., Fukao, S., Qiao, X., Kato, C., and Tsujimoto, Y., 2007, LES Simulation of Backflow Vortex Structure at theInlet of an Inducer, ASME Journal of Fluids Engineering, Vol.129, No. 2, pp. 587-594. https://doi.org/10.1115/1.2717613
  11. Qiao,X., Horiguchi, H., Kato, C., and Tsujimoto, Y., 2001, Numerical Study of Backflow at the Inlet of Inducers, Proceedingsof the 3rd Int. Symp. On Fluid Machinery and Fluid Engineering, Beijing, China, A-1, pp. 1-11.

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