Working Principle Simulations of a Dynamic ResonantWall Shear Stress Sensor Concept

This paper discusses a novel dynamic resonant wall shear stress sensor concept based on an oscillating sensor operating near resonance. The interaction between the oscillating sensor surface and the fluid above it is modelled using the unsteady laminar boundary layer equations. The numerical experim...

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Main Authors: William R. Lindberg, Jonathan W. Naughton, Xu Zhang
Format: Article
Language:English
Published: MDPI AG 2008-04-01
Series:Sensors
Subjects:
Online Access:http://www.mdpi.com/1424-8220/8/4/2707/
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spelling doaj-b74582dab2a14bd1be7320c89c6c7c282020-11-24T21:36:20ZengMDPI AGSensors1424-82202008-04-018427072721Working Principle Simulations of a Dynamic ResonantWall Shear Stress Sensor ConceptWilliam R. LindbergJonathan W. NaughtonXu ZhangThis paper discusses a novel dynamic resonant wall shear stress sensor concept based on an oscillating sensor operating near resonance. The interaction between the oscillating sensor surface and the fluid above it is modelled using the unsteady laminar boundary layer equations. The numerical experiment shows that the effect of the oscillating shear stress is well correlated by the Hummer number, the ratio of the steady shear force caused by the outside flow to the oscillating viscous force created by the sensor motion. The oscillating shear stress predicted by the fluid model is used in a mechanical model of the sensor to predict the sensor’s dynamic motion. Static calibration curves for amplitude and frequency influences are predicted. These results agree with experimental results on some extent, and shows some expectation for further development of the dynamic resonant sensor concept.http://www.mdpi.com/1424-8220/8/4/2707/dynamic resonant shear stress sensorHummer numberfluid and mechanical model
collection DOAJ
language English
format Article
sources DOAJ
author William R. Lindberg
Jonathan W. Naughton
Xu Zhang
spellingShingle William R. Lindberg
Jonathan W. Naughton
Xu Zhang
Working Principle Simulations of a Dynamic ResonantWall Shear Stress Sensor Concept
Sensors
dynamic resonant shear stress sensor
Hummer number
fluid and mechanical model
author_facet William R. Lindberg
Jonathan W. Naughton
Xu Zhang
author_sort William R. Lindberg
title Working Principle Simulations of a Dynamic ResonantWall Shear Stress Sensor Concept
title_short Working Principle Simulations of a Dynamic ResonantWall Shear Stress Sensor Concept
title_full Working Principle Simulations of a Dynamic ResonantWall Shear Stress Sensor Concept
title_fullStr Working Principle Simulations of a Dynamic ResonantWall Shear Stress Sensor Concept
title_full_unstemmed Working Principle Simulations of a Dynamic ResonantWall Shear Stress Sensor Concept
title_sort working principle simulations of a dynamic resonantwall shear stress sensor concept
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2008-04-01
description This paper discusses a novel dynamic resonant wall shear stress sensor concept based on an oscillating sensor operating near resonance. The interaction between the oscillating sensor surface and the fluid above it is modelled using the unsteady laminar boundary layer equations. The numerical experiment shows that the effect of the oscillating shear stress is well correlated by the Hummer number, the ratio of the steady shear force caused by the outside flow to the oscillating viscous force created by the sensor motion. The oscillating shear stress predicted by the fluid model is used in a mechanical model of the sensor to predict the sensor’s dynamic motion. Static calibration curves for amplitude and frequency influences are predicted. These results agree with experimental results on some extent, and shows some expectation for further development of the dynamic resonant sensor concept.
topic dynamic resonant shear stress sensor
Hummer number
fluid and mechanical model
url http://www.mdpi.com/1424-8220/8/4/2707/
work_keys_str_mv AT williamrlindberg workingprinciplesimulationsofadynamicresonantwallshearstresssensorconcept
AT jonathanwnaughton workingprinciplesimulationsofadynamicresonantwallshearstresssensorconcept
AT xuzhang workingprinciplesimulationsofadynamicresonantwallshearstresssensorconcept
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