Decentralized control of vibrations in wind turbines using multiple active tuned mass dampers with stroke constraint

This article is devoted to the study of the vibration control for blades and tower in a wind turbine. Based on the Euler–Lagrangian method, a multi-body dynamic model including three blades with distributed parameter, tower, and their coupling is obtained. Multi active tuned mass dampers have been u...

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Main Author: Cong Cong
Format: Article
Language:English
Published: SAGE Publishing 2018-12-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814018816756
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spelling doaj-149d552ee18946819ba8a624546a1b312020-11-25T03:43:48ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402018-12-011010.1177/1687814018816756Decentralized control of vibrations in wind turbines using multiple active tuned mass dampers with stroke constraintCong CongThis article is devoted to the study of the vibration control for blades and tower in a wind turbine. Based on the Euler–Lagrangian method, a multi-body dynamic model including three blades with distributed parameter, tower, and their coupling is obtained. Multi active tuned mass dampers have been utilizing as damping devices. Therefore, the dynamics of the tuned mass dampers are also considered in modeling. The influence of extreme wind, and grid dynamics on the vibration of the blade was analyzed. Moreover, the nonlinearity induced by space constraints, which impact on vibration control, is introduced. For active control, the constrained decentralized control strategy is designed via linear matrix inequality which tuned mass dampers stroke constraints are modeled as hard constraints. A doubly fed induction generator connected to an infinite bus including the detailed electrical and structural model was performed on MATLAB/Simulink. Simulation results show that the control strategy can effectively reduce the vibration of the blade while the damper stroke satisfies the working space permitted by the blade. Investigations demonstrate promising results for decentralized constrained control in simultaneous control blade vibrations and tower vibrations. Each actuator is driven separately from the output of the corresponding sensor so that only local feedback control is achieved; this improves the system reliability.https://doi.org/10.1177/1687814018816756
collection DOAJ
language English
format Article
sources DOAJ
author Cong Cong
spellingShingle Cong Cong
Decentralized control of vibrations in wind turbines using multiple active tuned mass dampers with stroke constraint
Advances in Mechanical Engineering
author_facet Cong Cong
author_sort Cong Cong
title Decentralized control of vibrations in wind turbines using multiple active tuned mass dampers with stroke constraint
title_short Decentralized control of vibrations in wind turbines using multiple active tuned mass dampers with stroke constraint
title_full Decentralized control of vibrations in wind turbines using multiple active tuned mass dampers with stroke constraint
title_fullStr Decentralized control of vibrations in wind turbines using multiple active tuned mass dampers with stroke constraint
title_full_unstemmed Decentralized control of vibrations in wind turbines using multiple active tuned mass dampers with stroke constraint
title_sort decentralized control of vibrations in wind turbines using multiple active tuned mass dampers with stroke constraint
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2018-12-01
description This article is devoted to the study of the vibration control for blades and tower in a wind turbine. Based on the Euler–Lagrangian method, a multi-body dynamic model including three blades with distributed parameter, tower, and their coupling is obtained. Multi active tuned mass dampers have been utilizing as damping devices. Therefore, the dynamics of the tuned mass dampers are also considered in modeling. The influence of extreme wind, and grid dynamics on the vibration of the blade was analyzed. Moreover, the nonlinearity induced by space constraints, which impact on vibration control, is introduced. For active control, the constrained decentralized control strategy is designed via linear matrix inequality which tuned mass dampers stroke constraints are modeled as hard constraints. A doubly fed induction generator connected to an infinite bus including the detailed electrical and structural model was performed on MATLAB/Simulink. Simulation results show that the control strategy can effectively reduce the vibration of the blade while the damper stroke satisfies the working space permitted by the blade. Investigations demonstrate promising results for decentralized constrained control in simultaneous control blade vibrations and tower vibrations. Each actuator is driven separately from the output of the corresponding sensor so that only local feedback control is achieved; this improves the system reliability.
url https://doi.org/10.1177/1687814018816756
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