Prediction of Wake Flows Induced by an Offshore Wind Turbine Foundation: Understanding its Environmental Impact - Phase 2: Floating Platforms
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Författare
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Examensarbete för masterexamen
Master's Thesis
Master's Thesis
Modellbyggare
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Sammanfattning
The deployment of Floating Offshore Wind Turbine(s) (FOWTs) requires methods
to evaluate their hydrodynamic response and wake characteristics. This thesis ap
plies the Immersed Boundary Method (IBM), implemented as the Virtual Body
Method (VBM) in Simcenter STAR-CCM+, to simulate the UMaine VolturnUS-S
semi-submersible platform. The methodology was validated against the dynamic
Fluid-Body Interaction (DFBI) with overset meshing technique. For a 2D floating
box in waves, the VBM reproduced heave and pitch natural periods with differences
of 0.65% and 0.24%, respectively, while surge exhibited a 12% deviation. In 3D
free-decay simulations of the UMaine VolturnUS-S foundation, the platform’s heave
natural period agreed within 0.73%, whereas the pitch period deviated by 0.22%
. Even with noticeable deviations, this VBM notably reduced computational costs
by nearly 40% in core-hours per million elements for free decay case, when com
pared to the DFBI cases with overset meshing. Applying the validated framework
to full-scale conditions, multiphase simulations of the platform in a thermally strat
ified environment were conducted. The results demonstrated that the multi-column
structure generates a complex near-wake recirculation zone with persistent flow re
versal. Thermal mixing was predominantly observed near the surface, resulting in a
maximum mean temperature increase by 5.82K at a depth of 3.83m below the free
surface, with mixing effects decaying rapidly in deeper waters. The findings validate
the VBM as a functional fixed-grid alternative for simulating platform kinemat
ics and provide a baseline for future environmental wake investigations involving
FOWTs.
Beskrivning
Ämne/nyckelord
Floating Offshore Wind Turbines (FOWTs), VolturnUS-S Platform, Virtual Body Method (VBM), Immersed Boundary Method (IBM), Computational Fluid Dynamics (CFD), Fluid–Structure Interaction (FSI)
