PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 19, 2026Journal of Vibration Engineering & Technologies1 citationsOpen Access

Efficiency of Vibration Control in Offshore Wind Turbines Using Active Tuned Mass Dampers within a Soil-Fluid-Structure Interaction Framework

View Full Paper
FSFrancisco Wesley Araújo da SilvaGCGuilherme Terceiro Cunha

Key Points

  • The aim is to assess how effective active tuned mass dampers are in reducing vibrations in offshore wind turbines using a coupled SFSI model.
  • Developed a coupled soil-fluid-structure interaction model integrating ATMDs
  • Applied speed and vibration control strategies for dynamic analysis
  • Conducted numerical simulations under various offshore conditions
  • Successful vibration reduction, especially in edgewise vibrations of turbine blades
  • Insights into dynamic behavior and stability under real environmental conditions
  • Demonstrated effectiveness of the control strategy in enhancing operational reliability

Abstract

Abstract Purpose The modeling of wind energy systems is essential for optimizing performance, enhancing reliability, and supporting the transition to sustainable and renewable energy sources under increasing global energy demands. This study aims to evaluate the effectiveness of Active Tuned Mass Dampers (ATMDs) in mitigating vibrations of offshore wind turbines within a coupled Soil–Fluid–Structure Interaction (SFSI) framework. Methods A novel coupled SFSI model is proposed, integrating ATMDs with both speed and vibration control strategies. The formulation combines numerical and analytical approaches to capture the interaction between the soil, fluid, and structural components of offshore wind turbines. ATMDs are installed near the tip of each blade and at the top of the tower. The model is evaluated under diverse offshore conditions, including varying water depths, wind profiles, foundation stiffnesses, and structural defects, through numerical simulations. Results The numerical results demonstrate that the proposed control strategy effectively reduces vibration levels, particularly achieving a noticeable reduction in the edgewise vibrations of rotating wind turbine blades. The coupled SFSI framework provides valuable insights into the dynamic behavior and operational stability of offshore wind turbines under realistic environmental and structural conditions. Conclusions The proposed coupled SFSI framework, combined with ATMD-based control strategies, represents an effective approach for vibration mitigation in offshore wind turbines. The results highlight the potential of the model to support improved design, control, and operational stability of offshore wind energy systems, contributing to the advancement of sustainable energy technologies.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Silva et al. (2026) studied this question.

synapsesocial.com/papers/6996a8a9ecb39a600b3ef8a8https://doi.org/10.1007/s42417-026-02355-5
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Wind and Wave-Induced Vibration Reduction Control for Floating Offshore Wind Turbine Using Delayed Signals2024 · 6 citations
  2. 2Definition of a 5-MW Reference Wind Turbine for Offshore System Development2009 · 5,935 citations
  3. 3Stability analysis of semi-submersible floating wind turbines based on gyro-turbine coupled dynamics model2025 · 2 citations
  4. 4WindPACT Turbine Rotor Design Study: June 2000--June 2002 (Revised)2006 · 58 citations
  5. 5Nonlinear Soil Behavior Model in Localized Lagrange Multipliers Mixed Formulation (u,p) for Dynamical Analysis of Wind Turbine Coupled Systems2023 · 2 citations