A Technique For Lock-In Prediction On A Fluid Structure Interaction Of Naca 0012 Foil With High Re

A numerical lock-in prediction technique of a NACA 0012 hydrofoil, immersed in a flow having a Re of 3.07x106 is proposed in this paper. The technique observes the foil’s response as part of a fluid-structure interaction analysis. The response is modelled by foil’s vibration which is represented by...

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Main Authors: Nu Rhahida Arini, Stephen R. Turnock, Mingyi Tan
Format: Article
Language:English
Published: Politeknik Elektronika Negeri Surabaya 2020-12-01
Series:Emitter: International Journal of Engineering Technology
Subjects:
FSI
CFD
Online Access:https://emitter.pens.ac.id/index.php/emitter/article/view/543
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spelling doaj-c95ee8e78c7244c8807840de19c98bff2021-02-03T08:32:31ZengPoliteknik Elektronika Negeri Surabaya Emitter: International Journal of Engineering Technology2355-391X2443-11682020-12-018210.24003/emitter.v8i2.543543A Technique For Lock-In Prediction On A Fluid Structure Interaction Of Naca 0012 Foil With High ReNu Rhahida Arini0Stephen R. Turnock1Mingyi Tan 2Politeknik Elektronika Negeri SurabayaUniversity of Southampton, University of Southampton A numerical lock-in prediction technique of a NACA 0012 hydrofoil, immersed in a flow having a Re of 3.07x106 is proposed in this paper. The technique observes the foil’s response as part of a fluid-structure interaction analysis. The response is modelled by foil’s vibration which is represented by spring and damper components. The technique identifies and predicts the foil’s lock-in when it vibrates. The prediction is examined using the Phase Averaged Method which employs the Hilbert Transform Method. The aim of this paper is to propose a numerical way to identify a lock-in condition experienced by a NACA 0012 foil in a high Reynolds number flow. The foil’s mechanical properties are selected and its motions are restricted in two modes which are in the pitch and heave directions. The rotational and transverse lock-in modes are identified in the model. The existence of lock-in is verified using pressure distribution plot, the history of trailing edge displacement and fluid regime capture. The history of total force coefficients is also shown to justify the result. The result shows that the technique can predict reliably the lock-in condition on the foil’s interaction. Three main fluid induced vibration frequencies are generated in the interaction. None of them are close to natural frequency of the foil and lock-in is apparently not found in the typical operational condition. https://emitter.pens.ac.id/index.php/emitter/article/view/543Tidal TurbineFSICFD
collection DOAJ
language English
format Article
sources DOAJ
author Nu Rhahida Arini
Stephen R. Turnock
Mingyi Tan
spellingShingle Nu Rhahida Arini
Stephen R. Turnock
Mingyi Tan
A Technique For Lock-In Prediction On A Fluid Structure Interaction Of Naca 0012 Foil With High Re
Emitter: International Journal of Engineering Technology
Tidal Turbine
FSI
CFD
author_facet Nu Rhahida Arini
Stephen R. Turnock
Mingyi Tan
author_sort Nu Rhahida Arini
title A Technique For Lock-In Prediction On A Fluid Structure Interaction Of Naca 0012 Foil With High Re
title_short A Technique For Lock-In Prediction On A Fluid Structure Interaction Of Naca 0012 Foil With High Re
title_full A Technique For Lock-In Prediction On A Fluid Structure Interaction Of Naca 0012 Foil With High Re
title_fullStr A Technique For Lock-In Prediction On A Fluid Structure Interaction Of Naca 0012 Foil With High Re
title_full_unstemmed A Technique For Lock-In Prediction On A Fluid Structure Interaction Of Naca 0012 Foil With High Re
title_sort technique for lock-in prediction on a fluid structure interaction of naca 0012 foil with high re
publisher Politeknik Elektronika Negeri Surabaya
series Emitter: International Journal of Engineering Technology
issn 2355-391X
2443-1168
publishDate 2020-12-01
description A numerical lock-in prediction technique of a NACA 0012 hydrofoil, immersed in a flow having a Re of 3.07x106 is proposed in this paper. The technique observes the foil’s response as part of a fluid-structure interaction analysis. The response is modelled by foil’s vibration which is represented by spring and damper components. The technique identifies and predicts the foil’s lock-in when it vibrates. The prediction is examined using the Phase Averaged Method which employs the Hilbert Transform Method. The aim of this paper is to propose a numerical way to identify a lock-in condition experienced by a NACA 0012 foil in a high Reynolds number flow. The foil’s mechanical properties are selected and its motions are restricted in two modes which are in the pitch and heave directions. The rotational and transverse lock-in modes are identified in the model. The existence of lock-in is verified using pressure distribution plot, the history of trailing edge displacement and fluid regime capture. The history of total force coefficients is also shown to justify the result. The result shows that the technique can predict reliably the lock-in condition on the foil’s interaction. Three main fluid induced vibration frequencies are generated in the interaction. None of them are close to natural frequency of the foil and lock-in is apparently not found in the typical operational condition.
topic Tidal Turbine
FSI
CFD
url https://emitter.pens.ac.id/index.php/emitter/article/view/543
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