Wave damping of a sloshing wave by an interacting turbulent vortex flow
Author
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Reyes Aspé, Francisco
Author
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Torrejón, Vicente
Author
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Falcón Beas, Claudio
Admission date
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2020-05-08T22:40:53Z
Available date
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2020-05-08T22:40:53Z
Publication date
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2020
Cita de ítem
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Physical Review E 101, 033106 (2020)
es_ES
Identifier
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10.1103/PhysRevE.101.033106
Identifier
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https://repositorio.uchile.cl/handle/2250/174618
Abstract
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We report on the enhancement of the hydrodynamic damping of gravity waves at the surface of a fluid layer as they interact with a turbulent vortex flow in a sloshing experiment. Gravity surface waves are excited by oscillating horizontally a square container holding our working fluid (water). At the bottom of the container, four impellers in a quadrupole configuration generate a vortex array at moderate to high Reynolds number, which interact with the wave. We measure the surface fluctuations using different optical nonintrusive methods and the local velocity of the flow. In our experimental range, we show that as we increase the angular velocity of the impellers, the gravity wave amplitude decreases without changing the oscillation frequency or generating transverse modes. This wave dissipation enhancement is contrasted with the increase of the turbulent velocity fluctuations from particle image velocimetry measurements via a turbulent viscosity. To rationalize the damping enhancement a periodically forced shallow water model including viscous terms is presented, which is used to calculate the sloshing wave resonance curve. The enhanced viscous dissipation coefficient is found to scale linearly with the measured turbulent viscosity. Hence, the proposed scheme is a good candidate as an active surface gravity wave dampener via vortex flow reconfiguration.