Abstract

In order to reveal the gas–liquid two-phase flow pattern of inverted-umbrella aerator, the high-speed photography technology, particle image velocimetry, and Volume of Fluid model are employed to capture the free-surface dynamics and velocity distribution. The Computational Fluid Dynamics simulations are validated by experimental data and the results are in good agreement with experiment. The simulation results of flow field, streamline distribution, velocity distribution, free-surface deformation, and turbulence kinetic energy are analyzed at in time and at radial profiles sampled at several vertical positions. Back surface of each blade revealed the area of low-pressure, which can drag air into water directly from surface and thus enhance liquid aeration and oxygenation capacity. Lifting capacity of the inverted-umbrella aerator is enough to get the liquid at the bottom of the aeration tank accelerated toward liquid surface generating the hydraulic jump. As a result, liquid phase splashes capture portions of air promoting aeration of the solution. A clear circulation whirlpool is formed during the process. The circulation whirlpool starts at the bottom of the impeller moving upward along the plate until the outer edge of the impeller, which is close to the free surface. The circulation whirlpool indicates that the inverted-umbrella aerator plays a significant role in shallow aeration. The turbulence intensity created by the impeller gradually reduces with depth. The position ( z = 0.65 H) is the watershed in the tank. The oxygen mass transfer mainly occurs in the layer above watershed.

Highlights

  • Sewage biological treatment system has been widely used over the world to fight water pollution growing.[1]

  • High-speed photography technique and Volume of Fluid (VOF) model with Level set are employed to study the gas–liquid interface motion dynamics as well as multiphase flow pattern in an aeration tank driven by an inverted-umbrella aerator

  • Based on the high-speed photography technique and Computational Fluid Dynamics (CFD) modeling, the free-surface deformation in the aeration tank driven by the inverted-umbrella aerator is studied

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Summary

Introduction

Sewage biological treatment system has been widely used over the world to fight water pollution growing.[1]. Cao[6] studied experimentally oxygen transfer of high-power surface aerator as a function of mixing speed and immersed depth.

Results
Conclusion
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