Dynamic response of an anchor-saving shared taut mooring system for ultra-deepwater floating offshore wind turbine arrays

Abstract Floating offshore wind turbines (FOWTs) deployed in ultra-deep water require mooring solutions that reduce cost and seabed footprint while maintaining robust limit-state performance. This study proposes an anchor-saving shared taut mooring system for a three-turbine array of 15 MW semi-submersible FOWTs at 1500 m water depth, benchmarked against a shared-anchor configuration and a classic individual taut mooring baseline. Coupled time-domain simulations are conducted for representative operating and extreme parked (survival) conditions to quantify peak line tensions, six-degree-of-freedom motions, and sensitivities to chain-polyester segmentation and shared connection-point position. Relative to the individual baseline, the proposed system reduces the peak chain tension of the most heavily loaded shared line by 34.7% and 35.9% in the operating and extreme parked cases, respectively, while maintaining adequate strength margins for all lines. Maximum surge remains below 1.12% and 2.83% of water depth. With only six anchors for three turbines, the proposed shared taut system promotes more uniform load distribution and offers a practical, footprint-efficient option for ultra-deepwater FOWT arrays.

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Publication Details

Journal
Journal of Ocean Engineering and Marine Energy
Published
2026-08-28
DOI
https://doi.org/10.1007/s40722-026-00538-6
Primary Topic
Wave and Wind Energy Systems
Type
article
Field-Weighted Citation Impact
0.00

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article

Dynamic response of an anchor-saving shared taut mooring system for ultra-deepwater floating offshore wind turbine arrays

Milad Shadman, S. F. Estefen, Junkai Feng, Ehsan Nikkhah et al.
Journal of Ocean Engineering and Marine Energy
Wave and Wind Energy Systems
article

Dynamic response of an anchor-saving shared taut mooring system for ultra-deepwater floating offshore wind turbine arrays

Milad Shadman, S. F. Estefen, Junkai Feng, Ehsan Nikkhah, Shuai Cui, Jian Tan
article en

Abstract

Abstract Floating offshore wind turbines (FOWTs) deployed in ultra-deep water require mooring solutions that reduce cost and seabed footprint while maintaining robust limit-state performance. This study proposes an anchor-saving shared taut mooring system for a three-turbine array of 15 MW semi-submersible FOWTs at 1500 m water depth, benchmarked against a shared-anchor configuration and a classic individual taut mooring baseline. Coupled time-domain simulations are conducted for representative operating and extreme parked (survival) conditions to quantify peak line tensions, six-degree-of-freedom motions, and sensitivities to chain-polyester segmentation and shared connection-point position. Relative to the individual baseline, the proposed system reduces the peak chain tension of the most heavily loaded shared line by 34.7% and 35.9% in the operating and extreme parked cases, respectively, while maintaining adequate strength margins for all lines. Maximum surge remains below 1.12% and 2.83% of water depth. With only six anchors for three turbines, the proposed shared taut system promotes more uniform load distribution and offers a practical, footprint-efficient option for ultra-deepwater FOWT arrays.

Journal of Ocean Engineering and Marine Energy
Universidade Federal do Rio de Janeiro (BR), University Town of Shenzhen (CN), National Institute of Quality (PE), Tsinghua University (CN)
China National Offshore Oil Corporation, China Scholarship Council, Universidade Federal do Rio de Janeiro
Affordable and clean energy
Openalex Percentile: Top 14%
Wave and Wind Energy Systems
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