The sharp increase in sailing speed experienced in the last decades has led yacht engineering to face issues of fluid-elastic instability deriving from the interaction of a 'light' structure with the surrounding 'heavy' fluid flow at high speed. In this context, the authors of this paper decided to undertake an experimental campaign to test a low mass- ratio hydrofoil model to investigate flutter instability in CNR-INM towing tank in Rome. The physical model is built as a segmented body to allow for a plain description of its elastic properties: this choice makes the results suitable to be used for validation of reduced-order analytical or numerical models. The model design methodology and the experimental set-up are detailed along with the testing procedure, substantially based on damping analysis, to identify the critical flutter speed. To have a first estimation of this critical speed, the authors implemented an analytical reduced-order model by representing the structure as a 2D spring-damper-mass system, and calculating the unsteady fluid loads by means of Theodorsen theory.

Experimental Flutter Testing of a low mass ratio NACA-16012 Hydrofoil Model

D Dessi;F Passacantilli;
2022

Abstract

The sharp increase in sailing speed experienced in the last decades has led yacht engineering to face issues of fluid-elastic instability deriving from the interaction of a 'light' structure with the surrounding 'heavy' fluid flow at high speed. In this context, the authors of this paper decided to undertake an experimental campaign to test a low mass- ratio hydrofoil model to investigate flutter instability in CNR-INM towing tank in Rome. The physical model is built as a segmented body to allow for a plain description of its elastic properties: this choice makes the results suitable to be used for validation of reduced-order analytical or numerical models. The model design methodology and the experimental set-up are detailed along with the testing procedure, substantially based on damping analysis, to identify the critical flutter speed. To have a first estimation of this critical speed, the authors implemented an analytical reduced-order model by representing the structure as a 2D spring-damper-mass system, and calculating the unsteady fluid loads by means of Theodorsen theory.
2022
Inglese
HYEL 2022 9th International Conference on Hydroelasticity In Marine Technology
Sì, ma tipo non specificato
10-13/07/2022
Rome
Flutter; Fluid-Structure Interaction; Hydroelasticity; Experimental; Theodorsen
4
restricted
D'Ubaldo, O; Dessi, D; Passacantilli, F; Rizzo, Cm
273
info:eu-repo/semantics/conferenceObject
04 Contributo in convegno::04.01 Contributo in Atti di convegno
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/459741
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