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March 8, 20260 citationsOpen Access

Performance of Multi Chamber Oscillating Water Columns: Effects of Chamber Configuration and Power Absorption

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AMAdnan Sandy Dwi MartaAWAgus WibowoBRBondan Fiqi Riyalda

Key Points

  • This research aims to evaluate the hydrodynamic and aerodynamic performance of multi-chamber oscillating water columns (OWCs) based on chamber configurations.
  • Examined various chamber inclination angles (0°, 20°, and 40°) and chamber counts (2, 3, and 4)
  • Utilized Computational Fluid Dynamics (CFD) simulations
  • Applied Reynolds-Averaged Navier-Stokes (RANS) equations and RNG turbulence model to analyze flow characteristics
  • Measured parameters included free surface elevation, air pressure, air velocity, power distribution, and power absorption.
  • Highest free surface elevation of 1.545 m in a 4-chamber setup at 0° inclination
  • Maximum air pressure of 774,804 Pa, and air velocity of 36.356 m/s recorded in a 3-chamber system at 40° inclination
  • Peak power absorption of 42.79 kWh observed in a 4-chamber system at 40° inclination
  • 4-chamber configuration with 40° inclination outperformed 2 and 3-chamber configurations by 52% and 77% in power absorption
  • More chambers generally increased power absorption but decreased pressure and velocity peaks.

Abstract

Oscillating Water Column (OWC) is a promising green energy technology for wave energy conversion, accounting for 26.79% of global wave energy converter applications. This study investigates the hydrodynamic and aerodynamic performance of multi-chamber OWC systems with variations in chamber inclination angles (0°, 20°, and 40°) and the number of chambers (2, 3, and 4). Computational Fluid Dynamics (CFD) simulations were performed using the Reynolds-Averaged Navier-Stokes (RANS) equations and the RNG turbulence model to analyze flow characteristics under regular wave conditions. Key parameters evaluated include free surface elevation, air pressure, air velocity, power distribution, and power absorption. Results indicate that the highest free surface elevation (1.545 m) occurred in a 4-chamber configuration with a 0° inclination. The maximum air pressure (774,804 Pa), air velocity (36.356 m/s), and power distribution (23.58 kWh) were found in a 3-chamber system with a 40° inclination. Meanwhile, the highest total power absorption (42.79 kWh) was observed in a 4-chamber system with a 40° inclination. The 4-chamber configuration with a 40° inclination showed the best performance, achieving 42.79 kWh of power and 0.86 efficiency—outperforming 3-cahmber and 2-chamber setups by 52% and 77%, respectively. Generally, configurations with more chambers resulted in greater power absorption but lower individual pressure and velocity peaks. Increased inclination tends to reduce water surface oscillation. These findings provide insights for optimizing multi-chamber OWC design for improved wave energy capture.

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Cite This Study

Marta et al. (2026) studied this question.

synapsesocial.com/papers/69ada8dfbc08abd80d5bc374https://doi.org/10.5109/7407643
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