Onset of Flow Separation Phenomenon in a Low-Specific Speed Centrifugal Pump Impeller

Author:

Liu Xiao-Dong1,Farhat Mohamed2,Li Yao-Jun1,Liu Zhu-Qing34,Yang Wei1

Affiliation:

1. College of Water Resources and Civil Engineering, China Agricultural University , Beijing 100083, China

2. Laboratory for Hydraulic Machines, Ecole Polytechnique Fédérale de Lausanne , Avenue de Cour 33 Bis, Lausanne 1007, Switzerland

3. College of Water Resources and Civil Engineering, China Agricultural University , Beijing 100083, China ; , Beijing 100083, China

4. Beijing Engineering Research Center of Safety and Energy Saving Technology for Water Supply Network System, China Agricultural University , Beijing 100083, China ; , Beijing 100083, China

Abstract

AbstractThe efficiency of centrifugal pumps drops sharply when the flowrate is reduced below a threshold value. This is due to a profound change in the flow structure, characterized by a large of portion flow separation near the impeller blades and the formation of energy-intensive recirculation zones. So far, it is not clear how such flow separation may initiate and develop. This study combines state-of-the-art experiments and numerical simulations to explore the onset of flow separation in centrifugal impellers. In particular, a high-frequency particle image velocimetry (PIV) system is used to visualize the velocity field in impeller channels. The continuous relative velocity value and deviation angle relative to the blade surface are displayed before the stall inception conditions. Meanwhile, the validated numerical simulation method is used to compute the flow at similar experimental conditions. The results clearly show a cylindrical vortex band exists near the impeller shroud. As the flowrate decreases, the vortex grows gradually stronger, while moving to the junction between the impeller shroud and blade suction side, and then toward impeller hub along the blade suction side. This growing and moving vortex is the main cause of the flow separation near blade suction side observed in our experiments. Interestingly, the impeller head remains insensitive to this vortex until it causes the flowrate in the adjacent impeller channels to be redistributed. This led us to believe that stalled flow can be detected before it affects the hydrodynamic performances.

Funder

National Natural Science Foundation of China

Publisher

ASME International

Subject

Mechanical Engineering

Reference30 articles.

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3. Vibration Behavior and Dynamic Stress of Runners of Very High Head Reversible Pump-Turbines;Int. J. Fluid Mach. Syst.,2011

4. Coherence Analysis to Detect Unsteady Rotating Stall Phenomenon Based on Pressure Pulsation Signals of a Centrifugal Pump;Mech. Syst. Signal Process.,2021

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