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Hamid Sarlak

Publications and source records attributed to Hamid Sarlak.

2 recordsLinked to original sources

Directional focused wave group response of a Floating Wind Turbine: Harmonic separation in experiment and CFD

The offshore wind sector relies on floating foundations for deeper waters but faces challenges from harsh conditions, nonlinear dynamics, and low-frequency resonant motions caused by second-order hydrodynamic loads. We analyze these dynamics and extract higher harmonic motions for a semisubmersible floating foundation under extreme wave conditions using experimental and numerical approaches. Two focused wave groups, with and without spreading, are considered, and experimental data is obtained from scaled physical model tests using phase-shifted input signals for harmonic decomposition of the wave responses. The responses are reproduced numerically using a novel CFD-based rigid body solver, FloatStepper, achieving good agreement. The study quantifies the effects of wave severity, spreading, and steepness on odd and even harmonics of the surge and pitch responses and mooring line tensions. A stronger sea state notably increased odd harmonics in surge and pitch. Additionally, the pitch subharmonic response, less noticeable in milder states, became apparent. Wave spreading influenced the overall response, with pronounced effects on odd and even superharmonic responses. The results reveal a front-back asymmetry in mooring line tensions, with the back lines experiencing greater tension. Increasing wavegroup amplitude caused shifts in subharmonic and superharmonic responses, transitioning from low-frequency surge-dominated behavior to coupled surge-pitch interaction. The cause of this pitch dominance is identified and discussed via CFD.

physics.flu-dyn

Wake structures and performance of wind turbine rotor with harmonic surging motions under laminar and turbulent inflows

This study presents a comprehensive numerical analysis of a full-scale horizontal-axis Floating Offshore Wind Turbine (FOWT) subjected to harmonic surging motions under both laminar and turbulent inflow conditions. Utilizing high-fidelity Computational Fluid Dynamics (CFD) simulations, namely Large-Eddy Simulation (LES) with Actuator Line Model (ALM), this research investigates the rotor performance, wake characteristics, and wake structures of a surging FOWT in detail. The study delves into the influence of varying inflow turbulence intensities, surging settings, and their interplay on the aerodynamic performance and the wake aerodynamics of a FOWT rotor. The results show that, through employing the phase-locking technique, Surging Induced Periodic Coherent Structures (SIPCS) can be identified in the wake of all the surging cases studied, irrespective of the inflow conditions and the surging settings. Additionally, the findings show that the faster wake recovery observed in the surging-laminar cases is not caused by facilitating instability-induced faster wake breakdown, a previously accepted hypothesis. Instead, it is the enhanced advection process resulting from the induction fields of SIPCS that causes the wake to recover faster. The analysis of rotor performance shows that the time-averaged rotor performances are affected by the intricate dynamics arising from the surging motions. With certain surging settings, the time-averaged thrust and the time-averaged power of a surging rotor are found to be simultaneously lower and higher compared to those of a fixed rotor. Furthermore, the study underscores the importance of considering both the magnitude of surging and the rate of surging ($\mathcal{V}$ and $\mathcal{W}$) simultaneously to fully characterize the hysteresis load on a surging rotor.

physics.flu-dyn