A progressive increasing in turbine dimension has characterized the technological development in offshore wind energy utilization. This aspect reflects on the growing in blade length and weight. For very large turbines, the standard control systems may not be optimal to give the best performance and the best vibratory load damping, keeping the condition of maximum energy production. For this reason, some new solutions have been proposed in research. One of these is the possibility of morphs the blade surface in an active way (increasing the performance in low wind region) or passive (load reduction) way. In this work, we present a numerical study on the active and passive trailing edge morphing, applied to large wind turbines. In particular, the study focuses on the aerodynamic response of a midspan blade section, in terms of fluid structure interaction (FSI) and driven surface deformation. We test the active system in a simple start-up procedure and the passive system in a power production with turbulent wind conditions, that is, two situations in which we expect these systems could improve the performance. All the computations are carried out with a FSI code, which couples a 2D-CFD solver, a moving mesh solver (both implemented in OpenFOAM library) and a FEM solver. We evaluate all the boundary conditions to apply in the section problem by simulating the 5MW NREL wind turbine with the NREL CAE-tools developed for wind turbine simulation.

Numerical study on active and passive trailing edge morphing applied to a multi-MW wind turbine section / Corsini, Alessandro; Castorrini, Alessio; Boezi, M.; Rispoli, Franco. - (2015), pp. 106-118. (Intervento presentato al convegno 6th International Conference on Computational Methods in Marine Engineering, MARINE 2015 tenutosi a Consiglio Nazionale delle Ricerche (CNR), ita nel 2015).

Numerical study on active and passive trailing edge morphing applied to a multi-MW wind turbine section

CORSINI, Alessandro;CASTORRINI, ALESSIO;RISPOLI, Franco
2015

Abstract

A progressive increasing in turbine dimension has characterized the technological development in offshore wind energy utilization. This aspect reflects on the growing in blade length and weight. For very large turbines, the standard control systems may not be optimal to give the best performance and the best vibratory load damping, keeping the condition of maximum energy production. For this reason, some new solutions have been proposed in research. One of these is the possibility of morphs the blade surface in an active way (increasing the performance in low wind region) or passive (load reduction) way. In this work, we present a numerical study on the active and passive trailing edge morphing, applied to large wind turbines. In particular, the study focuses on the aerodynamic response of a midspan blade section, in terms of fluid structure interaction (FSI) and driven surface deformation. We test the active system in a simple start-up procedure and the passive system in a power production with turbulent wind conditions, that is, two situations in which we expect these systems could improve the performance. All the computations are carried out with a FSI code, which couples a 2D-CFD solver, a moving mesh solver (both implemented in OpenFOAM library) and a FEM solver. We evaluate all the boundary conditions to apply in the section problem by simulating the 5MW NREL wind turbine with the NREL CAE-tools developed for wind turbine simulation.
2015
6th International Conference on Computational Methods in Marine Engineering, MARINE 2015
airfoil; fluid-structure interaction; morphing; wind turbine; ocean engineering; computational theory and mathematics
04 Pubblicazione in atti di convegno::04b Atto di convegno in volume
Numerical study on active and passive trailing edge morphing applied to a multi-MW wind turbine section / Corsini, Alessandro; Castorrini, Alessio; Boezi, M.; Rispoli, Franco. - (2015), pp. 106-118. (Intervento presentato al convegno 6th International Conference on Computational Methods in Marine Engineering, MARINE 2015 tenutosi a Consiglio Nazionale delle Ricerche (CNR), ita nel 2015).
File allegati a questo prodotto
File Dimensione Formato  
Corsini_postprint_numerical-study_2015.pdf

accesso aperto

Note: http://congress.cimne.com/marine2015/frontal/ProgTodo.asp
Tipologia: Documento in Post-print (versione successiva alla peer review e accettata per la pubblicazione)
Licenza: Tutti i diritti riservati (All rights reserved)
Dimensione 763.42 kB
Formato Adobe PDF
763.42 kB Adobe PDF
Corsini_numerical-study_2015.pdf

solo gestori archivio

Tipologia: Versione editoriale (versione pubblicata con il layout dell'editore)
Licenza: Tutti i diritti riservati (All rights reserved)
Dimensione 793.43 kB
Formato Adobe PDF
793.43 kB Adobe PDF   Contatta l'autore

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/871561
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 8
  • ???jsp.display-item.citation.isi??? 3
social impact