Dynamic responses of a jacket-type offshore wind turbine using decoupled and coupled models

This paper presents numerical studies of the dynamic responses of a jacket-type offshore wind turbine using both decoupled and coupled models. In the decoupled (hydroelastic) model, the wind load is included through time-dependent forces and moments at a single node on the top of the tower. The coup...

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Published in:Volume 9B: Ocean Renewable Energy
Main Authors: Ong, Muk Chen, Bachynski, Erin Elizabeth, Økland, Ole David, Passano, Elizabeth Anne
Format: Book Part
Language:English
Published: American Society of Mechanical Engineers (ASME) 2014
Subjects:
Online Access:http://hdl.handle.net/11250/2497739
https://doi.org/10.1115/OMAE2014-24246
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spelling ftntnutrondheimi:oai:ntnuopen.ntnu.no:11250/2497739 2023-05-15T14:23:55+02:00 Dynamic responses of a jacket-type offshore wind turbine using decoupled and coupled models Ong, Muk Chen Bachynski, Erin Elizabeth Økland, Ole David Passano, Elizabeth Anne 2014 http://hdl.handle.net/11250/2497739 https://doi.org/10.1115/OMAE2014-24246 eng eng American Society of Mechanical Engineers (ASME) 33rd International Conference on Ocean, Offshore and Arctic Engineering Volume 9B: Ocean Renewable Energy Norges forskningsråd: 193823 urn:isbn:978-0-7918-4554-7 http://hdl.handle.net/11250/2497739 https://doi.org/10.1115/OMAE2014-24246 cristin:1165409 Chapter 2014 ftntnutrondheimi https://doi.org/10.1115/OMAE2014-24246 2019-09-17T06:53:14Z This paper presents numerical studies of the dynamic responses of a jacket-type offshore wind turbine using both decoupled and coupled models. In the decoupled (hydroelastic) model, the wind load is included through time-dependent forces and moments at a single node on the top of the tower. The coupled model is a hydro-servo-aero-elastic representation of the system. The investigated structure is the OC4 (Offshore Code Comparison Collaboration Continuation) jacket foundation supporting the NREL 5-MW wind turbine in a water depth of 50m. Different operational wind and wave loadings at an offshore site with relatively high soil stiffness are investigated. The objective of this study is to evaluate the applicability of the computationally efficient linear decoupled model by comparing with the results obtained from the nonlinear coupled model. Good agreement was obtained in the eigen-frequency analysis, decay tests, and wave-only simulations. In order to obtain good results in the combined wind and wave simulations, two different strategies were applied in the decoupled model, which are 1) Wind loads obtained from the coupled model were applied directly as time-dependent point loads in the decoupled model; and 2) The thrust and torque from an isolated rotor model were used as wind loads on the decoupled model together with a linear aerodynamic damper. It was found that, by applying the thrust force from an isolated rotor model in combination with linear damping, reasonable agreement could be obtained between the decoupled and coupled models in combined wind and wave simulations. publishedVersion Copyright © 2014 by ASME Book Part Arctic NTNU Open Archive (Norwegian University of Science and Technology) Tower The ENVELOPE(-58.479,-58.479,-62.215,-62.215) Volume 9B: Ocean Renewable Energy
institution Open Polar
collection NTNU Open Archive (Norwegian University of Science and Technology)
op_collection_id ftntnutrondheimi
language English
description This paper presents numerical studies of the dynamic responses of a jacket-type offshore wind turbine using both decoupled and coupled models. In the decoupled (hydroelastic) model, the wind load is included through time-dependent forces and moments at a single node on the top of the tower. The coupled model is a hydro-servo-aero-elastic representation of the system. The investigated structure is the OC4 (Offshore Code Comparison Collaboration Continuation) jacket foundation supporting the NREL 5-MW wind turbine in a water depth of 50m. Different operational wind and wave loadings at an offshore site with relatively high soil stiffness are investigated. The objective of this study is to evaluate the applicability of the computationally efficient linear decoupled model by comparing with the results obtained from the nonlinear coupled model. Good agreement was obtained in the eigen-frequency analysis, decay tests, and wave-only simulations. In order to obtain good results in the combined wind and wave simulations, two different strategies were applied in the decoupled model, which are 1) Wind loads obtained from the coupled model were applied directly as time-dependent point loads in the decoupled model; and 2) The thrust and torque from an isolated rotor model were used as wind loads on the decoupled model together with a linear aerodynamic damper. It was found that, by applying the thrust force from an isolated rotor model in combination with linear damping, reasonable agreement could be obtained between the decoupled and coupled models in combined wind and wave simulations. publishedVersion Copyright © 2014 by ASME
format Book Part
author Ong, Muk Chen
Bachynski, Erin Elizabeth
Økland, Ole David
Passano, Elizabeth Anne
spellingShingle Ong, Muk Chen
Bachynski, Erin Elizabeth
Økland, Ole David
Passano, Elizabeth Anne
Dynamic responses of a jacket-type offshore wind turbine using decoupled and coupled models
author_facet Ong, Muk Chen
Bachynski, Erin Elizabeth
Økland, Ole David
Passano, Elizabeth Anne
author_sort Ong, Muk Chen
title Dynamic responses of a jacket-type offshore wind turbine using decoupled and coupled models
title_short Dynamic responses of a jacket-type offshore wind turbine using decoupled and coupled models
title_full Dynamic responses of a jacket-type offshore wind turbine using decoupled and coupled models
title_fullStr Dynamic responses of a jacket-type offshore wind turbine using decoupled and coupled models
title_full_unstemmed Dynamic responses of a jacket-type offshore wind turbine using decoupled and coupled models
title_sort dynamic responses of a jacket-type offshore wind turbine using decoupled and coupled models
publisher American Society of Mechanical Engineers (ASME)
publishDate 2014
url http://hdl.handle.net/11250/2497739
https://doi.org/10.1115/OMAE2014-24246
long_lat ENVELOPE(-58.479,-58.479,-62.215,-62.215)
geographic Tower The
geographic_facet Tower The
genre Arctic
genre_facet Arctic
op_relation 33rd International Conference on Ocean, Offshore and Arctic Engineering Volume 9B: Ocean Renewable Energy
Norges forskningsråd: 193823
urn:isbn:978-0-7918-4554-7
http://hdl.handle.net/11250/2497739
https://doi.org/10.1115/OMAE2014-24246
cristin:1165409
op_doi https://doi.org/10.1115/OMAE2014-24246
container_title Volume 9B: Ocean Renewable Energy
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