Skip navigation
  • 中文
  • English

DSpace CRIS

  • DSpace logo
  • Home
  • Research Outputs
  • Researchers
  • Organizations
  • Projects
  • Explore by
    • Research Outputs
    • Researchers
    • Organizations
    • Projects
  • Communities & Collections
  • SDGs
  • Sign in
  • 中文
  • English
  1. National Taiwan Ocean University Research Hub
  2. 工學院
  3. 海洋工程科技學士學位學程(系)
Please use this identifier to cite or link to this item: http://scholars.ntou.edu.tw/handle/123456789/26626
Title: Numerical investigation of a pile-supported oscillating water column breakwater under oblique wave incidence and variable bathymetry
Authors: Dash, Santanu Kumar
Swami, Kailash Chand
Koley, Santanu
Tsai, Chia-Cheng 
Issue Date: 2026
Publisher: AIP Publishing
Journal Volume: 38
Journal Issue: 4
Start page/Pages: 30
Source: PHYSICS OF FLUIDS
Abstract: 
This study carries out a boundary element analysis to numerically investigate the hydrodynamic performance of a pile-supported oscillating water column breakwater wave energy converter subjected to obliquely incident waves, within the framework of linear potential flow theory. A bottom undulation effect, created by varying water depths on the lee and seaward sides, is adopted as an effective strategy to enhance wave power extraction under obliquely incident waves. Key hydrodynamic parameters, including optimal efficiency, wave reflection, transmission, wave loads, damping characteristics, diffraction flux, and optimal power exerted, are systematically investigated. Besides, the key hydrodynamic parameters are formulated and validated against the newly derived Haskind relation for obliquely incident waves. The findings reveal that an optimal chamber width ratio ( b/h(1) = 0.15 ) and front wall submergence ( a(1) / h(1) = 0.15 ), combined with a rear wall draft of a(2) / h(1) = 0.40 maximize the energy capture while maintaining structural balance. Additionally, moderate oblique wave angles ( 30 degrees and 45 degrees ) significantly enhance resonance and power output. Furthermore, a lower water depth ratio ( h(2) / h(1) = 0.55 ) effectively broadens resonance bandwidth and minimizes wave transmission, improving both efficiency and resilience. The study also demonstrates that seabed non-uniformity and concave bottom profiles can significantly enhance energy extraction compared to a conventional stepped seabed by amplifying the wave propulsion of the incident wave within the water column.
URI: http://scholars.ntou.edu.tw/handle/123456789/26626
ISSN: 1070-6631
DOI: 10.1063/5.0321707
Appears in Collections:海洋工程科技學士學位學程(系)

Show full item record

Google ScholarTM

Check

Altmetric

Altmetric

Related Items in TAIR


Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.

Explore by
  • Communities & Collections
  • Research Outputs
  • Researchers
  • Organizations
  • Projects
Build with DSpace-CRIS - Extension maintained and optimized by Logo 4SCIENCE Feedback