Ultrasound-Driven Fluid Motion - Modelling Approach
Fluid motion induced by ultrasound is an effect that arises from the attenuation of sound waves in a fluid. This phenomenon allows for a series of applications in industry. To achieve a significant effect in practice, high-intensity acoustics is required, which can solely be realized using the chara...
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doaj-8595595cadec437598f2fd3c1c45c0902020-11-25T03:33:00ZengMulti-Science PublishingInternational Journal of Multiphysics1750-95482048-39612018-03-0112110.21152/1750-9548.12.1.1349Ultrasound-Driven Fluid Motion - Modelling ApproachD Rubinetti0D A Weiss1University of Applied Sciences Northwestern SwitzerlandUniversity of Applied Sciences Northwestern SwitzerlandFluid motion induced by ultrasound is an effect that arises from the attenuation of sound waves in a fluid. This phenomenon allows for a series of applications in industry. To achieve a significant effect in practice, high-intensity acoustics is required, which can solely be realized using the characteristics of ultrasound. Its high-frequency behaviour on one side is confronted with the nearly steady-state nature of the fluid flow on the other side. The present study proposes a numerical modelling approach to further investigate and identify development potential. The coupling of acoustics and fluid flow poses a challenging multiphysics problem, its treatment requires an appropriate handling of transient quantities on the different frequency scales. Basically the force triggering a low frequency fluid flow arises based on the time average of quantities varying on a high frequency scale. The analysis includes an estimation of acting terms by dimensionless relations as well as a verification by means of a simplified test-case. The concept presented is numerically stable and appropiate. It can be adapted to related applications involving sound-driven fluid motion.http://journal.multiphysics.org/index.php/IJM/article/view/357 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
D Rubinetti D A Weiss |
spellingShingle |
D Rubinetti D A Weiss Ultrasound-Driven Fluid Motion - Modelling Approach International Journal of Multiphysics |
author_facet |
D Rubinetti D A Weiss |
author_sort |
D Rubinetti |
title |
Ultrasound-Driven Fluid Motion - Modelling Approach |
title_short |
Ultrasound-Driven Fluid Motion - Modelling Approach |
title_full |
Ultrasound-Driven Fluid Motion - Modelling Approach |
title_fullStr |
Ultrasound-Driven Fluid Motion - Modelling Approach |
title_full_unstemmed |
Ultrasound-Driven Fluid Motion - Modelling Approach |
title_sort |
ultrasound-driven fluid motion - modelling approach |
publisher |
Multi-Science Publishing |
series |
International Journal of Multiphysics |
issn |
1750-9548 2048-3961 |
publishDate |
2018-03-01 |
description |
Fluid motion induced by ultrasound is an effect that arises from the attenuation of sound waves in a fluid. This phenomenon allows for a series of applications in industry. To achieve a significant effect in practice, high-intensity acoustics is required, which can solely be realized using the characteristics of ultrasound. Its high-frequency behaviour on one side is confronted with the nearly steady-state nature of the fluid flow on the other side.
The present study proposes a numerical modelling approach to further investigate and identify development potential. The coupling of acoustics and fluid flow poses a challenging multiphysics problem, its treatment requires an appropriate handling of transient quantities on the different frequency scales. Basically the force triggering a low frequency fluid flow arises based on the time average of quantities varying on a high frequency scale.
The analysis includes an estimation of acting terms by dimensionless relations as well as a verification by means of a simplified test-case. The concept presented is numerically stable and appropiate. It can be adapted to related applications involving sound-driven fluid motion. |
url |
http://journal.multiphysics.org/index.php/IJM/article/view/357 |
work_keys_str_mv |
AT drubinetti ultrasounddrivenfluidmotionmodellingapproach AT daweiss ultrasounddrivenfluidmotionmodellingapproach |
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1724565438970462208 |