Stochastic Dynamic Response Analysis of a 10 MW Tension Leg Platform Floating Horizontal Axis Wind Turbine

The dynamic response of floating horizontal axis wind turbines (FHWATs) are affected by the viscous and inertia effects. In free decay motion, viscous drag reduces the amplitude of pitch and roll fluctuation, the quasi-static mooring system overestimates the resonant amplitude values of pitch and ro...

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Main Authors: Tao Luo, De Tian, Ruoyu Wang, Caicai Liao
Format: Article
Language:English
Published: MDPI AG 2018-11-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/11/12/3341
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spelling doaj-1436bfb5dfc64b0c80746033599b2a172020-11-24T22:01:48ZengMDPI AGEnergies1996-10732018-11-011112334110.3390/en11123341en11123341Stochastic Dynamic Response Analysis of a 10 MW Tension Leg Platform Floating Horizontal Axis Wind TurbineTao Luo0De Tian1Ruoyu Wang2Caicai Liao3State Key Laboratory for Alternate Electrical Power System with Renewable Energy Sources, North China Electric Power University, Beijing 102206, ChinaState Key Laboratory for Alternate Electrical Power System with Renewable Energy Sources, North China Electric Power University, Beijing 102206, ChinaState Key Laboratory for Alternate Electrical Power System with Renewable Energy Sources, North China Electric Power University, Beijing 102206, ChinaCAS Key Laboratory of Wind Energy Utilization, Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing 100190, ChinaThe dynamic response of floating horizontal axis wind turbines (FHWATs) are affected by the viscous and inertia effects. In free decay motion, viscous drag reduces the amplitude of pitch and roll fluctuation, the quasi-static mooring system overestimates the resonant amplitude values of pitch and roll. In this paper, the quasi-static mooring system is modified by introducing linear damping and quadratic damping. The dynamic response characteristics of the FHAWT modified model of the DTU 10 MW tension leg platform (TLP) were studied. Dynamic response of the blade was mainly caused by wind load, while the wave increased the blade short-term damage equivalent load. The tower base bending moment was affected by inclination of the tower and the misaligned angle <i>&#946;<sub>wave</sub></i> between wind and wave. Except the yaw motion, other degrees of freedom motions of the TLP were substantially affected by <i>&#946;<sub>wave</sub></i>. Ultimate tension of the mooring system was related to the displacement caused by pitch and roll motions, and standard deviation of the tension was significantly affected by the wave frequency response. Under the action of wave load, the viscous drag would stimulate the mooring system and increase the resonance of the platform motion.https://www.mdpi.com/1996-1073/11/12/3341floating horizontal axis wind turbinesdynamic response analysistension leg platformmooring systemviscous drag
collection DOAJ
language English
format Article
sources DOAJ
author Tao Luo
De Tian
Ruoyu Wang
Caicai Liao
spellingShingle Tao Luo
De Tian
Ruoyu Wang
Caicai Liao
Stochastic Dynamic Response Analysis of a 10 MW Tension Leg Platform Floating Horizontal Axis Wind Turbine
Energies
floating horizontal axis wind turbines
dynamic response analysis
tension leg platform
mooring system
viscous drag
author_facet Tao Luo
De Tian
Ruoyu Wang
Caicai Liao
author_sort Tao Luo
title Stochastic Dynamic Response Analysis of a 10 MW Tension Leg Platform Floating Horizontal Axis Wind Turbine
title_short Stochastic Dynamic Response Analysis of a 10 MW Tension Leg Platform Floating Horizontal Axis Wind Turbine
title_full Stochastic Dynamic Response Analysis of a 10 MW Tension Leg Platform Floating Horizontal Axis Wind Turbine
title_fullStr Stochastic Dynamic Response Analysis of a 10 MW Tension Leg Platform Floating Horizontal Axis Wind Turbine
title_full_unstemmed Stochastic Dynamic Response Analysis of a 10 MW Tension Leg Platform Floating Horizontal Axis Wind Turbine
title_sort stochastic dynamic response analysis of a 10 mw tension leg platform floating horizontal axis wind turbine
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2018-11-01
description The dynamic response of floating horizontal axis wind turbines (FHWATs) are affected by the viscous and inertia effects. In free decay motion, viscous drag reduces the amplitude of pitch and roll fluctuation, the quasi-static mooring system overestimates the resonant amplitude values of pitch and roll. In this paper, the quasi-static mooring system is modified by introducing linear damping and quadratic damping. The dynamic response characteristics of the FHAWT modified model of the DTU 10 MW tension leg platform (TLP) were studied. Dynamic response of the blade was mainly caused by wind load, while the wave increased the blade short-term damage equivalent load. The tower base bending moment was affected by inclination of the tower and the misaligned angle <i>&#946;<sub>wave</sub></i> between wind and wave. Except the yaw motion, other degrees of freedom motions of the TLP were substantially affected by <i>&#946;<sub>wave</sub></i>. Ultimate tension of the mooring system was related to the displacement caused by pitch and roll motions, and standard deviation of the tension was significantly affected by the wave frequency response. Under the action of wave load, the viscous drag would stimulate the mooring system and increase the resonance of the platform motion.
topic floating horizontal axis wind turbines
dynamic response analysis
tension leg platform
mooring system
viscous drag
url https://www.mdpi.com/1996-1073/11/12/3341
work_keys_str_mv AT taoluo stochasticdynamicresponseanalysisofa10mwtensionlegplatformfloatinghorizontalaxiswindturbine
AT detian stochasticdynamicresponseanalysisofa10mwtensionlegplatformfloatinghorizontalaxiswindturbine
AT ruoyuwang stochasticdynamicresponseanalysisofa10mwtensionlegplatformfloatinghorizontalaxiswindturbine
AT caicailiao stochasticdynamicresponseanalysisofa10mwtensionlegplatformfloatinghorizontalaxiswindturbine
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