Unsteady numerical simulation of the flow in the U9 Kaplan turbine model

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Abstract

The Reynolds-averaged Navier-Stokes equations with the RNG k-varepsilon turbulence model closure are utilized to simulate the unsteady turbulent flow throughout the whole flow passage of the U9 Kaplan turbine model. The U9 Kaplan turbine model comprises 20 stationary guide vanes and 6 rotating blades (696.3 RPM), working at best efficiency load (0.71 m3/s). The computations are conducted using a general finite volume method, using the OpenFOAM CFD code. A dynamic mesh is used together with a sliding GGI interface to include the effect of the rotating runner. The clearance is included in the guide vane. The hub and tip clearances are also included in the runner. An analysis is conducted of the unsteady behavior of the flow field, the pressure fluctuation in the draft tube, and the coherent structures of the flow. The tangential and axial velocity distributions at three sections in the draft tube are compared against LDV measurements. The numerical result is in reasonable agreement with the experimental data, and the important flow physics close to the hub in the draft tube is captured. The hub and tip vortices and an on-axis forced vortex are captured. The numerical results show that the frequency of the forced vortex in 1/5 of the runner rotation.

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Javadi, A., & Nilsson, H. (2014). Unsteady numerical simulation of the flow in the U9 Kaplan turbine model. In IOP Conference Series: Earth and Environmental Science (Vol. 22). Institute of Physics Publishing. https://doi.org/10.1088/1755-1315/22/2/022001

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