Dynamic Mode Decomposition of merging wind turbine wakes
The design and operation of wind farms is significantly affected by the impact that upstream turbine wakes have on the power production and fatigue loading of subsequent turbines; often called the wake effect. In this work, two types of flows are considered: the wake of a single turbine with a lamin...
Главные авторы: | , , , , |
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Формат: | Conference item |
Язык: | English |
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IOP Publishing
2023
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author | Zormpa, M Le Clainche, S Ferrer, E Vogel, CR Willden, RHJ |
author_facet | Zormpa, M Le Clainche, S Ferrer, E Vogel, CR Willden, RHJ |
author_sort | Zormpa, M |
collection | OXFORD |
description | The design and operation of wind farms is significantly affected by the impact that upstream turbine wakes have on the power production and fatigue loading of subsequent turbines; often called the wake effect. In this work, two types of flows are considered: the wake of a single turbine with a laminar inflow and the combined wake of two turbines operating in-line where the upstream wake results in an unsteady inflow for the downstream turbine. Those two scenarios are simulated using large eddy simulation (LES) and the actuator line method (ALM). The spatio-temporal velocity fields are analyzed by means of high order dynamic mode decomposition (HODMD), a well established variant of the DMD. The results show that most of the higher frequencies characterizing the laminar case are instead dominated by the lower frequency modes in the combined wake. This suggests that structures emerging from the blade rotations in a wind turbine wake may be less significant for describing the wake dynamics when the rotor is operating in the unsteady wake of an upstream rotor. |
first_indexed | 2024-03-07T08:01:50Z |
format | Conference item |
id | oxford-uuid:43dc41d1-da22-4027-82d1-d1a2d49b016e |
institution | University of Oxford |
language | English |
last_indexed | 2024-03-07T08:01:50Z |
publishDate | 2023 |
publisher | IOP Publishing |
record_format | dspace |
spelling | oxford-uuid:43dc41d1-da22-4027-82d1-d1a2d49b016e2023-10-02T13:38:03ZDynamic Mode Decomposition of merging wind turbine wakesConference itemhttp://purl.org/coar/resource_type/c_5794uuid:43dc41d1-da22-4027-82d1-d1a2d49b016ePhysical sciencesAffordable and clean energyEnglishSymplectic ElementsIOP Publishing2023Zormpa, MLe Clainche, SFerrer, EVogel, CRWillden, RHJThe design and operation of wind farms is significantly affected by the impact that upstream turbine wakes have on the power production and fatigue loading of subsequent turbines; often called the wake effect. In this work, two types of flows are considered: the wake of a single turbine with a laminar inflow and the combined wake of two turbines operating in-line where the upstream wake results in an unsteady inflow for the downstream turbine. Those two scenarios are simulated using large eddy simulation (LES) and the actuator line method (ALM). The spatio-temporal velocity fields are analyzed by means of high order dynamic mode decomposition (HODMD), a well established variant of the DMD. The results show that most of the higher frequencies characterizing the laminar case are instead dominated by the lower frequency modes in the combined wake. This suggests that structures emerging from the blade rotations in a wind turbine wake may be less significant for describing the wake dynamics when the rotor is operating in the unsteady wake of an upstream rotor. |
spellingShingle | Physical sciences Affordable and clean energy Zormpa, M Le Clainche, S Ferrer, E Vogel, CR Willden, RHJ Dynamic Mode Decomposition of merging wind turbine wakes |
title | Dynamic Mode Decomposition of merging wind turbine wakes |
title_full | Dynamic Mode Decomposition of merging wind turbine wakes |
title_fullStr | Dynamic Mode Decomposition of merging wind turbine wakes |
title_full_unstemmed | Dynamic Mode Decomposition of merging wind turbine wakes |
title_short | Dynamic Mode Decomposition of merging wind turbine wakes |
title_sort | dynamic mode decomposition of merging wind turbine wakes |
topic | Physical sciences Affordable and clean energy |
work_keys_str_mv | AT zormpam dynamicmodedecompositionofmergingwindturbinewakes AT leclainches dynamicmodedecompositionofmergingwindturbinewakes AT ferrere dynamicmodedecompositionofmergingwindturbinewakes AT vogelcr dynamicmodedecompositionofmergingwindturbinewakes AT willdenrhj dynamicmodedecompositionofmergingwindturbinewakes |