Multiphysics analysis of a flexible oscillating water column wave energy converter with dielectric elastomer membrane
Huang, Yang and Xiao, Qing and Yang, Liu and Dai, Saishuai and Lotfian, Saeid and Brennan, Feargal (2026) Multiphysics analysis of a flexible oscillating water column wave energy converter with dielectric elastomer membrane. Journal of Fluids and Structures, 140. 104447. ISSN 0889-9746 (https://doi.org/10.1016/j.jfluidstructs.2025.10444...)
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Abstract
Flexible wave energy converters (FlexWECs) have emerged as a promising solution to address the limitations of conventional rigid devices in harsh marine environments. Among them, oscillating water column (OWC) systems integrated with dielectric elastomer generators (DEGs) offer simplified architectures, enhanced adaptability, and direct wave-to-electric energy conversion. However, the complex multiphysics interactions between fluid, structure, and electric fields remain poorly understood, hindering design optimization and performance prediction. This study develops a high-fidelity computational framework to simulate the coupled fluid-structure-electric behaviour of a flexible OWC wave energy converter (WEC) with a DEG membrane. The framework is first validated against experimental data, demonstrating good agreement in capturing the deformation of the flexible membrane induced by the coupled electrostatic and hydrodynamic forces. Subsequently, the model is applied to investigate how electric field influences the WEC system behaviour under regular wave excitation. Results show that applying an electric field reduces the effective stiffness of the membrane, leading to increased deformation. Additionally, it does raise overall structural stress levels, especially near the membrane centre and edge regions, where the maximum stresses are observed. Notably, electric excitation induces a secondary deformation mode in the membrane during the near-flat phase. These effects become more pronounced with increasing initial voltage, which also leads to an approximately quadratic increase in output power. The insights gained from this study provide a deeper understanding of fluid-structure-electricity (FSE) interactions in flexible OWC WECs and offer design guidance for enhancing energy harvesting efficiency in next-generation WEC devices.
ORCID iDs
Huang, Yang, Xiao, Qing
ORCID: https://orcid.org/0000-0001-8512-5299, Yang, Liu
ORCID: https://orcid.org/0000-0001-8475-1757, Dai, Saishuai
ORCID: https://orcid.org/0000-0002-9666-6346, Lotfian, Saeid
ORCID: https://orcid.org/0000-0001-8542-933X and Brennan, Feargal
ORCID: https://orcid.org/0000-0003-0952-6167;
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Item type: Article ID code: 94645 Dates: DateEvent1 January 2026Published3 November 2025Published Online28 October 2025AcceptedSubjects: Naval Science > Naval architecture. Shipbuilding. Marine engineering
Technology > Mechanical engineering and machineryDepartment: Strathclyde Business School > Accounting and Finance
Faculty of Engineering > Naval Architecture, Ocean & Marine Engineering
Faculty of Engineering > Mechanical and Aerospace EngineeringDepositing user: Pure Administrator Date deposited: 05 Nov 2025 12:55 Last modified: 03 Feb 2026 17:44 URI: https://strathprints.strath.ac.uk/id/eprint/94645
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