The Unsteady Pressure Field in a High Specific Speed Centrifugal Pump Impeller—Part II: Transient Hysteresis in the Characteristic

Author:

Kaupert Kevin A.1,Staubli Thomas2

Affiliation:

1. Turbomachinery Laboratory, ETH Swiss Federal Institute of Technology, CH-8092 Zurich, Switzerland

2. HTA Luzern, CH-6048 Horw, Switzerland

Abstract

Hysteresis in a pump characteristic results from instability phenomena involving complex three dimensional flow with recirculation. The unsteady flow field on the top and bottom branches of a hysteresis loop in a high specific speed (ωs = 1.7) centrifugal pump characteristic was experimentally evaluated. A hypothesis for recirculation zones and prerotation as power dissipaters is proposed for explaining the discrepancy in the pressure and shaft power hysteresis. The experimental investigation was performed in both the rotating and stationary frame. In the rotating frame 25 miniature pressure transducers mounted in an impeller blade passage were sampled with a telemetry system. In the stationary frame a fast response probe was implemented. The changing impeller flow field manifested itself between the two branches of the hysteresis with increasing stochastic pressure fluctuations. Using this information the position, size, and strength of the impeller recirculation was quantitatively determined. Theoretically the rate of change of useful hydraulic power in the hysteresis regime during transient pump operation was found to be a function of throttling rate. Quasi-steady behavior existed for slow throttling, |dφ/dt| < 0.005 s−1. A second-order nonlinear dependence on the throttle rate was determined for the change of useful flow power during the commencement/cessation of the impeller recirculation.

Publisher

ASME International

Subject

Mechanical Engineering

Reference18 articles.

1. Fraser, W. H., 1982, “Recirculation in Centrifugal Pumps,” World Pumps, pp. 227–235.

2. Gossweiler, C., 1993, “Sonden and Messsystem fu¨r schnelle aerodynamische Stro¨mungsmessungen mit piezoresistiven Druckgebern,” ETH Zurich Dissertation Nr. 10253.

3. Greitzer E. M. , 1980, “The Stability of Pumping Systems—The 1980 Freeman Scholar Lecture,” ASME JOURNAL OF FLUIDS ENGINEERING, Vol. 103, pp. 193–242, June.

4. Gu¨lich, J. F., 1995, “Untersuchung zur sattelfo¨rmigen Kennlinien-Instabilita¨t von Kreiselpumpen,” Forschung im Ingenieurwesen Bd. 61, Nr. 4.

5. Hergt, P., and Starke, J., 1985, “Flow Patterns Causing Instabilities in the Performance Curves of Centrifugal Pumps with Vaned Diffusers,” Proceedings of the Second International Pump Symposium, Houston, pp. 67–75.

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