An investigation of the secondary load cycle associated with wave scattering in severe wave–cylinder interactions
Ding, Haoyu and Tang, Tianning and Taylor, Paul H. and Adcock, Thomas and Zhao, Guangwei and Dai, Saishuai and Hlophe, Thobani and Reale, Cormac and Zang, Jun (2025) An investigation of the secondary load cycle associated with wave scattering in severe wave–cylinder interactions. Journal of Fluid Mechanics, 1021. A24. ISSN 0022-1120 (https://doi.org/10.1017/jfm.2025.10738)
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Abstract
This research examines in detail the complex nonlinear forces generated when steep waves interact with vertical cylindrical structures, such as those typically used as offshore wind turbine foundations. These interactions, particularly the nonlinear wave forces associated with the secondary load cycle, present unanswered questions about how they are triggered. Our experimental campaigns underscore the occurrence of the secondary load cycle. We also investigate how the vertical distributions of the scattering force, pressure field and wave field affect the nonlinear wave forces associated with the secondary load cycle phenomena. A phase-based harmonic separation method isolates harmonic components of the scattering force’s vertical distribution, pressure field and wave field. This approach facilitates the clear separation of individual harmonics by controlling the phase of incident waves, which offers new insights into the mechanisms of the secondary load cycle. Our findings highlight the importance of complex nonlinear wave–structure interactions in this context. In certain wave regimes, nonlinear forces are locally larger than the linear forces, highlighting the need to consider the secondary load cycle in structural design. In addition, a novel discovery emerges from our comparative analysis, whereby very high-frequency (over the fifth in harmonic and order) oscillations, strongly correlated to wave steepness, have the potential to play a role in structural fatigue. This new in-depth analysis provides a unique insight regarding the complex interplay between severe waves and typical cylindrical offshore structures, adding to our understanding of the secondary load cycle for applications related to offshore wind turbine foundations.
ORCID iDs
Ding, Haoyu, Tang, Tianning, Taylor, Paul H., Adcock, Thomas, Zhao, Guangwei, Dai, Saishuai
ORCID: https://orcid.org/0000-0002-9666-6346, Hlophe, Thobani, Reale, Cormac and Zang, Jun;
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Item type: Article ID code: 94451 Dates: DateEvent25 October 2025Published15 October 2025Published Online19 September 2025AcceptedSubjects: Naval Science > Naval architecture. Shipbuilding. Marine engineering Department: Faculty of Engineering > Naval Architecture, Ocean & Marine Engineering Depositing user: Pure Administrator Date deposited: 15 Oct 2025 09:45 Last modified: 05 Feb 2026 20:37 URI: https://strathprints.strath.ac.uk/id/eprint/94451
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