From Bore–Soliton–Splash to a New Wave-to-Wire Wave-Energy Model

Author:

Bokhove O.ORCID,Kalogirou A.ORCID,Zweers W.

Abstract

AbstractWe explore extreme nonlinear water-wave amplification in a contraction or, analogously, wave amplification in crossing seas. The latter case can lead to extreme or rogue-wave formation at sea. First, amplification of a solitary-water-wave compound running into a contraction is disseminated experimentally in a wave tank. Maximum amplification in our bore–soliton–splash observed is circa tenfold. Subsequently, we summarise some nonlinear and numerical modelling approaches, validated for amplifying, contracting waves. These amplification phenomena observed have led us to develop a novel wave-energy device with wave amplification in a contraction used to enhance wave-activated buoy motion and magnetically induced energy generation. An experimental proof-of-principle shows that our wave-energy device works. Most importantly, we develop a novel wave-to-wire mathematical model of the combined wave hydrodynamics, wave-activated buoy motion and electric power generation by magnetic induction, from first principles, satisfying one grand variational principle in its conservative limit. Wave and buoy dynamics are coupled via a Lagrange multiplier, which boundary value at the waterline is in a subtle way solved explicitly by imposing incompressibility in a weak sense. Dissipative features, such as electrical wire resistance and nonlinear LED loads, are added a posteriori. New is also the intricate and compatible finite-element space–time discretisation of the linearised dynamics, guaranteeing numerical stability and the correct energy transfer between the three subsystems. Preliminary simulations of our simplified and linearised wave-energy model are encouraging and involve a first study of the resonant behaviour and parameter dependence of the device.

Funder

Engineering and Physical Sciences Research Council

Publisher

Springer Science and Business Media LLC

Subject

Applied Mathematics,Computational Mathematics,Modeling and Simulation,Analysis

Reference50 articles.

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3. Bokhove, O., Kalogirou, A., Henry, D., Thomas, G.: A novel rogue-wave-energy device with wave amplification and induction actuator. In: 13th European Wave and Tidal Energy Conference 2019, Napoli, Italy (2019) https://ewtec.org/conferences/ewtec-2019/

4. Bokhove, O., Kalogirou, A.: Variational water wave modelling: from continuum to experiment. In: Bridges, Groves, Nicholls (eds.) Lecture Notes on the Theory of Water Waves. London Mathematical Society Lecture Notes Series, vol. 426, pp. 226–259 (2016)

5. Bokhove, O., Gagarina, E., Zweers, W., Thornton, A.: Bore Soliton Splash-van spektakel tot oceaangolf? Ned. Tijdschrift voor Natuurkunde 77(12), 446–450 (2011). (popular-science article written in Dutch)

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