Numerical hydrodynamic modelling of a pitching wave energy converter

Authors

  • Majid A. Bhinder Marine Renewable Energy Ireland (MaREI), University College Cork, Cork, Ireland
  • M.T. Rahmati Mechanical, Aerospace and Civil Engineering Department, Brunel University, Uxbrdige, UB8 3PH, UK
  • C.G. Mingham Department of Computing and Mathematics, Manchester Metropolitan University, Manchester, M1 5GD, UK
  • G.A. Aggidis Renewable Energy Group, Faculty of Science and Technology, Lancaster University, Lancaster, LA1 4YR, UK

Keywords:

WEC, numerical modelling, CFD, FLO W-3D, hydrodynamic, pitching, wave energy converter, AQWA

Abstract

Two computational methodologies – computational fluid dynamics (CFD) and the numerical modelling using linear potential theory based boundary element method (BEM) are compared against experimental measurements of the motion response of a pitching wave energy converter. CFD is considered as relatively rigorous approach offering nonlinear incorporation of viscous and vortex phenomenon and capturing of the flow turbulence to some extent, whereas numerical approach of the BEM relies upon the linear frequency domain hydrodynamic calculations that can be further used for the time-domain analysis offering robust preliminary design analysis. This paper reports results from both approaches and concludes upon the comparison of numerical and experimental findings.

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References

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Published

2015-07-01

How to Cite

Bhinder, M. A., Rahmati, M., Mingham, C., & Aggidis, G. (2015). Numerical hydrodynamic modelling of a pitching wave energy converter. European Journal of Computational Mechanics, 24(4), 129–143. Retrieved from https://journals.riverpublishers.com/index.php/EJCM/article/view/844

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Original Article