Viscous Damping Identification for a Wave Energy Converter Using CFD-URANS Simulations

During the optimization phase of a wave energy converter (WEC), it is essential to be able to rely on a model that is both fast and accurate. In this regard, Computational Fluid Dynamic (CFD) with Reynolds Averaged Navier–Stokes (RANS) approach is not suitable for optimization studies, given its com...

وصف كامل

التفاصيل البيبلوغرافية
الحاوية / القاعدة:Journal of Marine Science and Engineering
المؤلفون الرئيسيون: Marco Fontana, Pietro Casalone, Sergej Antonello Sirigu, Giuseppe Giorgi, Giovanni Bracco, Giuliana Mattiazzo
التنسيق: مقال
اللغة:الإنجليزية
منشور في: MDPI AG 2020-05-01
الموضوعات:
الوصول للمادة أونلاين:https://www.mdpi.com/2077-1312/8/5/355
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author Marco Fontana
Pietro Casalone
Sergej Antonello Sirigu
Giuseppe Giorgi
Giovanni Bracco
Giuliana Mattiazzo
author_facet Marco Fontana
Pietro Casalone
Sergej Antonello Sirigu
Giuseppe Giorgi
Giovanni Bracco
Giuliana Mattiazzo
author_sort Marco Fontana
collection DOAJ
container_title Journal of Marine Science and Engineering
description During the optimization phase of a wave energy converter (WEC), it is essential to be able to rely on a model that is both fast and accurate. In this regard, Computational Fluid Dynamic (CFD) with Reynolds Averaged Navier–Stokes (RANS) approach is not suitable for optimization studies, given its computational cost, while methods based on potential theory are fast but not accurate enough. A good compromise can be found in boundary element methods (BEMs), based on potential theory, with the addition of non-linearities. This paper deals with the identification of viscous parameters to account for such non-linearities, based on CFD-Unsteady RANS (URANS) analysis. The work proposes two different methodologies to identify the viscous damping along the rotational degree of freedom (DOF) of pitch and roll: The first solely involves the outcomes of the CFD simulations, computing the viscous damping coefficients through the logarithmic decrement method, the second approach solves the Cummins’ equation of motion, via a Runge-Kutta scheme, selecting the damping coefficients that minimize the difference with CFD time series. The viscous damping is mostly linear for pitch and quadratic for roll, given the shape of the WEC analysed.
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spelling doaj-art-77677b60ea814cdcb1a8dca60c9bba4a2025-08-20T01:03:36ZengMDPI AGJournal of Marine Science and Engineering2077-13122020-05-018535510.3390/jmse8050355Viscous Damping Identification for a Wave Energy Converter Using CFD-URANS SimulationsMarco Fontana0Pietro Casalone1Sergej Antonello Sirigu2Giuseppe Giorgi3Giovanni Bracco4Giuliana Mattiazzo5Department of Mechanical and Aerospace Engineering, Polytechnic of Turin, C.so Duca degli Abruzzi, 24, 10129 Turin, ItalyDepartment of Mechanical and Aerospace Engineering, Polytechnic of Turin, C.so Duca degli Abruzzi, 24, 10129 Turin, ItalyDepartment of Mechanical and Aerospace Engineering, Polytechnic of Turin, C.so Duca degli Abruzzi, 24, 10129 Turin, ItalyDepartment of Mechanical and Aerospace Engineering, Polytechnic of Turin, C.so Duca degli Abruzzi, 24, 10129 Turin, ItalyDepartment of Mechanical and Aerospace Engineering, Polytechnic of Turin, C.so Duca degli Abruzzi, 24, 10129 Turin, ItalyDepartment of Mechanical and Aerospace Engineering, Polytechnic of Turin, C.so Duca degli Abruzzi, 24, 10129 Turin, ItalyDuring the optimization phase of a wave energy converter (WEC), it is essential to be able to rely on a model that is both fast and accurate. In this regard, Computational Fluid Dynamic (CFD) with Reynolds Averaged Navier–Stokes (RANS) approach is not suitable for optimization studies, given its computational cost, while methods based on potential theory are fast but not accurate enough. A good compromise can be found in boundary element methods (BEMs), based on potential theory, with the addition of non-linearities. This paper deals with the identification of viscous parameters to account for such non-linearities, based on CFD-Unsteady RANS (URANS) analysis. The work proposes two different methodologies to identify the viscous damping along the rotational degree of freedom (DOF) of pitch and roll: The first solely involves the outcomes of the CFD simulations, computing the viscous damping coefficients through the logarithmic decrement method, the second approach solves the Cummins’ equation of motion, via a Runge-Kutta scheme, selecting the damping coefficients that minimize the difference with CFD time series. The viscous damping is mostly linear for pitch and quadratic for roll, given the shape of the WEC analysed.https://www.mdpi.com/2077-1312/8/5/355wave energycomputational fluid dynamicsidentificationviscous dampingURANS
spellingShingle Marco Fontana
Pietro Casalone
Sergej Antonello Sirigu
Giuseppe Giorgi
Giovanni Bracco
Giuliana Mattiazzo
Viscous Damping Identification for a Wave Energy Converter Using CFD-URANS Simulations
wave energy
computational fluid dynamics
identification
viscous damping
URANS
title Viscous Damping Identification for a Wave Energy Converter Using CFD-URANS Simulations
title_full Viscous Damping Identification for a Wave Energy Converter Using CFD-URANS Simulations
title_fullStr Viscous Damping Identification for a Wave Energy Converter Using CFD-URANS Simulations
title_full_unstemmed Viscous Damping Identification for a Wave Energy Converter Using CFD-URANS Simulations
title_short Viscous Damping Identification for a Wave Energy Converter Using CFD-URANS Simulations
title_sort viscous damping identification for a wave energy converter using cfd urans simulations
topic wave energy
computational fluid dynamics
identification
viscous damping
URANS
url https://www.mdpi.com/2077-1312/8/5/355
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