Abstract
Hydrokinetic energy harvesting represents a promising direction for sustainable renewable energy generation, leveraging complex fluid-struc ture interaction (FSI) phenomena to convert water current kinetic energy into electrical power. This study presents a comprehensive investigation of a novel Vortex-Induced Motion (VIM) energy converter designed to maxi mize power extraction from marine and riverine environments. The research methodology integrates advanced computational fluid dynamics (CFD) modeling with rigorous experimental validation to ensure reliable performance characterization. A CFD model is developed to simulate fluid structure interactions under diverse hydrodynamic conditions. Experimen tal verification is conducted through towing tank experiments, enabling robust model calibration and performance assessment. Key findings demonstrate the concept is capable of operating under a wide range of flow velocities, with numerical results confirming minimal performance degra dation in near-wall configurations. This characteristic suggests significant potential for seabed deployment across varied marine infrastructures. A detailed parametric analysis systematically evaluates damping configura tions, identifying optimal parameters for maximizing energy conversion efficiency. Economic feasibility analysis reveals competitive levelized cost of energy (LCOE) metrics, positioning the proposed energy converter concept as a technically and economically viable renewable energy solu tion for remote coastal and riverine applications.