Effects of dynamic axial stiffness of elastic moorings for a wave energy converter
Journal article, 2022

This work studies the effects of the dynamic axial stiffness of elastic moorings on the dynamic behaviour of a point absorber wave energy converter. Following two mooring analysis procedures, coupled dynamic analysis of a taut-moored WEC with three legs is performed using the FEM program DeepC in three irregular wave conditions. Two synthetic fibre rope materials are investigated, i.e. a normally stiff polyester and a wire-lay 3-strand nylon rope. The results of WEC motions and mooring tensions obtained from a quasi-static stiffness model and the dynamic stiffness model are compared and discussed. The former analysis applies the non-linear stiffness working curves of the ropes in the simulations, while the latter utilizes the dynamic stiffness expression with an iterative process following a practical mooring analysis procedure. For the nylon rope, the influence of the load amplitude on the dynamic stiffness and the WEC response is presented and analysed. It was found that the quasi-static stiffness model tends to underestimate the maximum mooring tensions, leading to 30%–40% lower results compared to the one accounting for the dynamic stiffness effects. For the studied WEC system, the nylon rope shows advantages over polyester, because of the lower mooring tensions and higher WEC motions.

DeepC

Elastic cables

Dynamic axial stiffness

Wave energy converter

Author

Francesco Depalo

University of Lisbon

Shan Wang

University of Lisbon

Sheng Xu

University of Lisbon

Carlos Guedes Soares

University of Lisbon

Shun-Han Yang

Chalmers, Mechanics and Maritime Sciences (M2), Marine Technology

Jonas Ringsberg

Chalmers, Mechanics and Maritime Sciences (M2), Marine Technology

Ocean Engineering

0029-8018 (ISSN)

Vol. 251 111132

ELASTMOOR - Elastic mooring systems for wave energy converters

Swedish Energy Agency (43995-1), 2017-04-01 -- 2020-05-31.

Driving Forces

Sustainable development

Innovation and entrepreneurship

Subject Categories

Applied Mechanics

Energy Engineering

Textile, Rubber and Polymeric Materials

Fluid Mechanics and Acoustics

Marine Engineering

Areas of Advance

Energy

Materials Science

Roots

Basic sciences

DOI

10.1016/j.oceaneng.2022.111132

More information

Latest update

10/21/2022