This article develops a nonlinear dynamic model of a U-Oscillating Water Column (U-OWC) wave energy converter (WEC) embedded in a rigid floating structure. Specifically, it considers the implementation of the U-OWCs into floating multipurpose platforms, where they can be used for absorbing part of the incoming wave energy, thus protecting the system while enhancing its energy security in operative conditions. Currently, no mathematical model quantifying the response of a floating U-OWC is available. For filling this gap, this article proposes a model based on the unsteady Bernoulli equation. Compared to other floating OWC models, a notable advantage of this model is that real fluid flow phenomena critical to the U-OWC modelling are accounted for, as well. A critical feature of the proposed model is the inclusion of apparent forces required for capturing the effects of the floating body dynamics on the WEC response. The proposed theoretical model is validated against the experimental data obtained from the physical model test of the 1:40 scale model of the Blue Growth Farm multi-purpose floating platform. The article shows that the model captures the salient features of the U-OWC time-domain response. Moreover, it highlights its limitations associated with the assumption of piston-like dynamic behaviour.

Theoretical modelling of U-Oscillating Water Column energy harvesters integrated in floating platforms / Ruzzo, C., Arena, F., Malara, G.. - In: OCEAN ENGINEERING. - ISSN 0029-8018. - 343:(2026). [10.1016/j.oceaneng.2025.123276]

Theoretical modelling of U-Oscillating Water Column energy harvesters integrated in floating platforms

Arena, Felice;Malara, Giovanni
2026-01-01

Abstract

This article develops a nonlinear dynamic model of a U-Oscillating Water Column (U-OWC) wave energy converter (WEC) embedded in a rigid floating structure. Specifically, it considers the implementation of the U-OWCs into floating multipurpose platforms, where they can be used for absorbing part of the incoming wave energy, thus protecting the system while enhancing its energy security in operative conditions. Currently, no mathematical model quantifying the response of a floating U-OWC is available. For filling this gap, this article proposes a model based on the unsteady Bernoulli equation. Compared to other floating OWC models, a notable advantage of this model is that real fluid flow phenomena critical to the U-OWC modelling are accounted for, as well. A critical feature of the proposed model is the inclusion of apparent forces required for capturing the effects of the floating body dynamics on the WEC response. The proposed theoretical model is validated against the experimental data obtained from the physical model test of the 1:40 scale model of the Blue Growth Farm multi-purpose floating platform. The article shows that the model captures the salient features of the U-OWC time-domain response. Moreover, it highlights its limitations associated with the assumption of piston-like dynamic behaviour.
2026
27-ott-2025
Inglese
343
17
https://www.sciencedirect.com/science/article/pii/S0029801825029592
Esperti anonimi
Wave energy
Floating structure
U-OWC
Experiment
Validation
Internazionale
Open access funding provided by Università degli Studi Mediterranea di Reggio Calabria within the CRUI-ELSEVIER 2023-2027 Agreement.
No
Ruzzo, Carlo; Arena, Felice; Malara, Giovanni
info:eu-repo/semantics/article
1 Contributo su Rivista::1.1 Articolo in rivista
262
Theoretical modelling of U-Oscillating Water Column energy harvesters integrated in floating platforms / Ruzzo, C., Arena, F., Malara, G.. - In: OCEAN ENGINEERING. - ISSN 0029-8018. - 343:(2026). [10.1016/j.oceaneng.2025.123276]
3
none
   Development and demonstration of an automated, modular and environmentally friendly multi-functional platform for open sea farm installations of the Blue Growth Industry
   The Blue Growth Farm
   European Commission
   Horizon 2020 Framework Programme
   774426
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.12318/161469
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