Nonlinear instability and time-domain response of thin-walled UHPC towers under floating dynamic boundaries

The upscaling of floating offshore wind turbines (FOWTs) to 15-MW capacities requires ultra-flexible, thin-walled ultra-high performance concrete (UHPC) towers, posing critical challenges to nonlinear stability. Conventional decoupled design approaches fail to capture the coupled effects of material degradation and geometric nonlinearity under extreme dynamic loading. This study develops a cross-scale, non-intrusive mapping framework to investigate the time-domain nonlinear instability of a 15-MW UHPC tower. Results show that dynamic eccentricity activates a dual-softening mechanism, leading to an approximately 15% increase in the bending-moment amplification factor relative to the purely geometrically nonlinear model. The failure mode transitions from global bending to localized crushing, accompanied by a pronounced damage localization within a narrow leeward region. Parametric analysis identifies a marked nonlinear response transition point of 180, beyond which the interaction between material softening and second-order effects induces up to a 49% reduction in ultimate capacity. The instability limit is further characterized by the singularity of the global tangent stiffness matrix coupled with strain energy evolution. The proposed framework provides a physics-based criterion for stability assessment and anti-collapse design of ultra-flexible offshore towers.

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Publication Details

Journal
Ocean Engineering
Published
2026-09-12
DOI
https://doi.org/10.1016/j.oceaneng.2026.128073
Primary Topic
Wave and Wind Energy Systems
Type
article
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Nonlinear instability and time-domain response of thin-walled UHPC towers under floating dynamic boundaries

Ou Geng, Fumin Li, Zhen Guo, Jinlong Bai et al.
Ocean Engineering
Wave and Wind Energy Systems
article

Nonlinear instability and time-domain response of thin-walled UHPC towers under floating dynamic boundaries

Ou Geng, Fumin Li, Zhen Guo, Jinlong Bai, Ping Sheng
article en

Abstract

The upscaling of floating offshore wind turbines (FOWTs) to 15-MW capacities requires ultra-flexible, thin-walled ultra-high performance concrete (UHPC) towers, posing critical challenges to nonlinear stability. Conventional decoupled design approaches fail to capture the coupled effects of material degradation and geometric nonlinearity under extreme dynamic loading. This study develops a cross-scale, non-intrusive mapping framework to investigate the time-domain nonlinear instability of a 15-MW UHPC tower. Results show that dynamic eccentricity activates a dual-softening mechanism, leading to an approximately 15% increase in the bending-moment amplification factor relative to the purely geometrically nonlinear model. The failure mode transitions from global bending to localized crushing, accompanied by a pronounced damage localization within a narrow leeward region. Parametric analysis identifies a marked nonlinear response transition point of 180, beyond which the interaction between material softening and second-order effects induces up to a 49% reduction in ultimate capacity. The instability limit is further characterized by the singularity of the global tangent stiffness matrix coupled with strain energy evolution. The proposed framework provides a physics-based criterion for stability assessment and anti-collapse design of ultra-flexible offshore towers.

Ocean EngineeringVol. 367
China University of Mining and Technology (CN)
Sustainable cities and communities, Climate action
Openalex Percentile: Top 15%
Wave and Wind Energy Systems
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Nonlinear instability and time-domain response of thin-walled UHPC towers under floating dynamic boundaries — Ou Geng, Fumin Li, et al. · Ocean Engineering (2026) | TGRS Research Map | TGRS