Wave energy harvesting of a floating membrane carpet tethered by array-arranged power take-off units
Teng, Zhiyuan and Cheng, Yong and Dai, Saishuai and Yuan, Zhiming and Incecik, Atilla (2025) Wave energy harvesting of a floating membrane carpet tethered by array-arranged power take-off units. Renewable Energy, 254. 123744. ISSN 0960-1481 (https://doi.org/10.1016/j.renene.2025.123744)
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Abstract
Flexible-structure-based wave energy converters (WECs) present a cutting-edge technology to efficiently harvest wave energy through the utilization of generalized elastic modes. This paper proposes a novel WEC consisting of a floating elastic carpet moored by a Power Take-Off (PTO) system. A numerical carpet-covered flume is developed to investigate the hydroelastic effect on wave energy conversion. The carpet is simulated as a uniform elastic thin membrane using the Finite Element Method (FEM). The Computational Fluid Dynamics (CFD) is adopted to model the two-phase flow motion. The bi-directionally coupled fluid-structure interaction is achieved by enforcing interface conditions at each time step. After convergence and validation, detailed hydrodynamic characteristics are examined via parametric analysis. The wave energy absorption of the floating carpet can be enhanced by the multi-mode elastic deformation, which is constructive for both wave energy extraction and wave attenuation. Symmetrical PTO placements yield better performance by striking a balance between energy extraction and structural deformation. When the number of PTO units exceeds a certain threshold, i.e., a continuous PTO distribution, the improved cost-effectiveness is not offered. The energy harvesting is augmented with increasing the PTO placement range. A larger carpet aspect ratio significantly improves efficiency, especially in medium- and long-period waves.
ORCID iDs
Teng, Zhiyuan, Cheng, Yong, Dai, Saishuai
ORCID: https://orcid.org/0000-0002-9666-6346, Yuan, Zhiming
ORCID: https://orcid.org/0000-0001-9908-1813 and Incecik, Atilla
ORCID: https://orcid.org/0009-0006-8895-1717;
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Item type: Article ID code: 93358 Dates: DateEvent1 December 2025Published11 June 2025Published Online10 June 2025Accepted22 April 2025SubmittedSubjects: Technology > Hydraulic engineering. Ocean engineering Department: Faculty of Engineering > Naval Architecture, Ocean & Marine Engineering
Faculty of Engineering > ArchitectureDepositing user: Pure Administrator Date deposited: 03 Jul 2025 09:47 Last modified: 13 Aug 2026 02:13 Related URLs: URI: https://strathprints.strath.ac.uk/id/eprint/93358
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