CFD Analysis of an Articulated-Body Wave Energy Converter: Comparison with Experimental Data and Frequency-Domain Modeling Predictions
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Publicerad
Författare
Typ
Examensarbete för masterexamen
Master's Thesis
Master's Thesis
Modellbyggare
Tidskriftstitel
ISSN
Volymtitel
Utgivare
Sammanfattning
Developing sustainable energy systems requires continued advancement in renewable
energy technologies. Among these, wave energy is considered a particularly promis
ing resource due to its substantial theoretical potential. This thesis investigates
an articulated-body wave energy converter using a computational fluid dynamics
(CFD) model developed in STAR-CCM+.
To evaluate the predictive capability of the numerical model, previously conducted
model tests are replicated under regular wave conditions. Wave periods ranging from
0.7 to 2.2 seconds are considered, with the hinge-angle amplitude as the primary
response quantity. This response is particularly important, as it is directly related
to the relative motion available for energy extraction.
The simulation results are compared with experimental measurements and results
from a previously developed frequency-domain model. The numerical setup includes
wave generation, multibody dynamics, and key subsystems such as the mooring and
Power Take-Off (PTO) systems. Two PTO formulations are implemented: a linear
formulation and a fitted nonlinear formulation based on the measured torque-angular
velocity relationship from the model tests.
Overall, the CFD models show close agreement with the experimental data across
the complete range of analyzed cases. They capture the experimentally observed
peak hinge-angle response and reduce overprediction near the peak compared with
the previous frequency-domain model. All CFD models predict the peak response
at the same wave period as the experiments and within 10% of the experimental
peak amplitude, whereas the frequency-domain model overpredicts the peak by more
than 30%. Comparisons between the two PTO representations further indicate that
this subsystem significantly influences the predicted response across the investigated
cases.
Among the investigated approaches, the CFD model with the fitted nonlinear PTO
formulation provides the best agreement with experimental measurements, with a
global error of approximately 10%. However, the comparison also shows that the
improved agreement cannot be attributed solely to the hydrodynamic model, as
the PTO formulation significantly influences the predicted hinge-angle response.
These findings indicate that reliable prediction of the WEC response requires not
only accurate hydrodynamic modeling but also representative subsystem input data,
particularly for the PTO system.
Beskrivning
Ämne/nyckelord
Articulated-Body Wave Energy Converter, Computational Fluid Dynamics, Hinge-Angle Response, Power Take-Off System, Wave Energy
