Directionality Effects of Aligned Wind and Wave Loads on a Y-Shape Semi-Submersible Floating Wind Turbine under Rated Operational Conditions

The Y-shape (triangular) semi-submersible foundation has been adopted by most of the built full-scale floating wind turbines, such as Windfloat, Fukushima Mirai and Shimpuu. Considering the non-fully-symmetrical shape and met-ocean condition, the foundation laying angle relative to wind/wave directi...

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Main Authors: Shengtao Zhou, Baohua Shan, Yiqing Xiao, Chao Li, Gang Hu, Xiaoping Song, Yongqing Liu, Yimin Hu
Format: Article
Language:English
Published: MDPI AG 2017-12-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/10/12/2097
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spelling doaj-18599b1368b8472297f93300af21cc502020-11-25T00:21:26ZengMDPI AGEnergies1996-10732017-12-011012209710.3390/en10122097en10122097Directionality Effects of Aligned Wind and Wave Loads on a Y-Shape Semi-Submersible Floating Wind Turbine under Rated Operational ConditionsShengtao Zhou0Baohua Shan1Yiqing Xiao2Chao Li3Gang Hu4Xiaoping Song5Yongqing Liu6Yimin Hu7Shenzhen Graduate School, Harbin Institute of Technology, Shenzhen 518055, ChinaSchool of Civil Engineering, Harbin Institute of Technology, Harbin 150001, ChinaShenzhen Graduate School, Harbin Institute of Technology, Shenzhen 518055, ChinaShenzhen Graduate School, Harbin Institute of Technology, Shenzhen 518055, ChinaDepartment of Civil and Environmental Engineering, The Hong Kong University of Science and Technology, Hong Kong, ChinaXEMC Windpower Co., Ltd., Xiangtan 411102, ChinaXEMC Windpower Co., Ltd., Xiangtan 411102, ChinaXEMC Windpower Co., Ltd., Xiangtan 411102, ChinaThe Y-shape (triangular) semi-submersible foundation has been adopted by most of the built full-scale floating wind turbines, such as Windfloat, Fukushima Mirai and Shimpuu. Considering the non-fully-symmetrical shape and met-ocean condition, the foundation laying angle relative to wind/wave directions will not only influence the downtime and power efficiency of the floating turbine, but also the strength and fatigue safety of the whole structure. However, the dynamic responses induced by various aligned wind and wave load directions have scarcely been investigated comparatively before. In our study, the directionality effects are investigated by means of combined wind and wave tests and coupled multi-body simulations. By comparing the measured data in three load directions, it is found that the differences of platform motions are mainly derived from the wave loads and larger pitch motion can always be observed in one of the directions. To make certain the mechanism underlying the observed phenomena, a coupled multi-body dynamic model of the floating wind turbine is established and validated. The numerical results demonstrate that the second-order hydrodynamic forces contribute greatly to the directionality distinctions for surge and pitch, and the first-order hydrodynamic forces determine the variations of tower base bending moments and nacelle accelerations. These findings indicate the directionality effects should be predetermined comprehensively before installation at sea, which is important for the operation and maintenance of the Y-shape floating wind turbines.https://www.mdpi.com/1996-1073/10/12/2097Y-shape semi-submersible foundationaligned wind and wave load directionsdirectionality effectscombined wind and wave testscoupled multi-body simulations
collection DOAJ
language English
format Article
sources DOAJ
author Shengtao Zhou
Baohua Shan
Yiqing Xiao
Chao Li
Gang Hu
Xiaoping Song
Yongqing Liu
Yimin Hu
spellingShingle Shengtao Zhou
Baohua Shan
Yiqing Xiao
Chao Li
Gang Hu
Xiaoping Song
Yongqing Liu
Yimin Hu
Directionality Effects of Aligned Wind and Wave Loads on a Y-Shape Semi-Submersible Floating Wind Turbine under Rated Operational Conditions
Energies
Y-shape semi-submersible foundation
aligned wind and wave load directions
directionality effects
combined wind and wave tests
coupled multi-body simulations
author_facet Shengtao Zhou
Baohua Shan
Yiqing Xiao
Chao Li
Gang Hu
Xiaoping Song
Yongqing Liu
Yimin Hu
author_sort Shengtao Zhou
title Directionality Effects of Aligned Wind and Wave Loads on a Y-Shape Semi-Submersible Floating Wind Turbine under Rated Operational Conditions
title_short Directionality Effects of Aligned Wind and Wave Loads on a Y-Shape Semi-Submersible Floating Wind Turbine under Rated Operational Conditions
title_full Directionality Effects of Aligned Wind and Wave Loads on a Y-Shape Semi-Submersible Floating Wind Turbine under Rated Operational Conditions
title_fullStr Directionality Effects of Aligned Wind and Wave Loads on a Y-Shape Semi-Submersible Floating Wind Turbine under Rated Operational Conditions
title_full_unstemmed Directionality Effects of Aligned Wind and Wave Loads on a Y-Shape Semi-Submersible Floating Wind Turbine under Rated Operational Conditions
title_sort directionality effects of aligned wind and wave loads on a y-shape semi-submersible floating wind turbine under rated operational conditions
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2017-12-01
description The Y-shape (triangular) semi-submersible foundation has been adopted by most of the built full-scale floating wind turbines, such as Windfloat, Fukushima Mirai and Shimpuu. Considering the non-fully-symmetrical shape and met-ocean condition, the foundation laying angle relative to wind/wave directions will not only influence the downtime and power efficiency of the floating turbine, but also the strength and fatigue safety of the whole structure. However, the dynamic responses induced by various aligned wind and wave load directions have scarcely been investigated comparatively before. In our study, the directionality effects are investigated by means of combined wind and wave tests and coupled multi-body simulations. By comparing the measured data in three load directions, it is found that the differences of platform motions are mainly derived from the wave loads and larger pitch motion can always be observed in one of the directions. To make certain the mechanism underlying the observed phenomena, a coupled multi-body dynamic model of the floating wind turbine is established and validated. The numerical results demonstrate that the second-order hydrodynamic forces contribute greatly to the directionality distinctions for surge and pitch, and the first-order hydrodynamic forces determine the variations of tower base bending moments and nacelle accelerations. These findings indicate the directionality effects should be predetermined comprehensively before installation at sea, which is important for the operation and maintenance of the Y-shape floating wind turbines.
topic Y-shape semi-submersible foundation
aligned wind and wave load directions
directionality effects
combined wind and wave tests
coupled multi-body simulations
url https://www.mdpi.com/1996-1073/10/12/2097
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