Methodology and Application of Flow-induced Resonance in Wind Turbine Blades

碩士 === 國立臺灣大學 === 工程科學及海洋工程學研究所 === 103 === In this thesis, a complete set of process of dynamic flow-induced resonance analysis is established, through application of large-scale offshore wind turbine blades, which provides industry and academia with a set of method of flow-induced resonance analys...

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Main Authors: Bo-Jiun Wu, 吳柏均
Other Authors: Huei-Jeng Lin
Format: Others
Language:zh-TW
Published: 2015
Online Access:http://ndltd.ncl.edu.tw/handle/45954226298330535484
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spelling ndltd-TW-103NTU053450422016-11-19T04:09:47Z http://ndltd.ncl.edu.tw/handle/45954226298330535484 Methodology and Application of Flow-induced Resonance in Wind Turbine Blades 流致共振分析方法與風機葉片實例應用 Bo-Jiun Wu 吳柏均 碩士 國立臺灣大學 工程科學及海洋工程學研究所 103 In this thesis, a complete set of process of dynamic flow-induced resonance analysis is established, through application of large-scale offshore wind turbine blades, which provides industry and academia with a set of method of flow-induced resonance analysis. First, geometric shape of 3.6-MW and 5-MW large-scale wind turbine blades are designed, plotted. After that, steady flow field analysis is performed to calculate rated power to confirm accuracy of the model. Second, modal analysis is performed by using finite element analysis software “COMSOL Multiphysics”. Through simulation verification, we confirm accuracy of the simulation compared with references and theory. After that, we study the natural frequency of two blades for different rotor speed, and then study if blades are resonant with operating frequency. Moreover, we perform modal analysis for 5-MW wind turbine tower, and then study if tower is coupled with blade. Third, wind-induced vibration analysis is performed by using finite element analysis software “COMSOL Multiphysics”, too. Through simulation verification, we confirm accuracy of the simulation compared with references. After that, we choose 6 sections of each blade to calculate Von Karman vortex shedding frequency for normal wind conditions and extreme wind conditions, and then study if blades are resonant with vortex shedding frequency. Finally, determination and application of wind-induced vibration damage is performed. Through a variety of references, we obtain the range of resonance wind speed for 6 sections of each blade. After that, we select experimental data of the wind speed per second for 2 days, determine whether there is wind-induced vibration damage on blades. Huei-Jeng Lin 林輝政 2015 學位論文 ; thesis 122 zh-TW
collection NDLTD
language zh-TW
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sources NDLTD
description 碩士 === 國立臺灣大學 === 工程科學及海洋工程學研究所 === 103 === In this thesis, a complete set of process of dynamic flow-induced resonance analysis is established, through application of large-scale offshore wind turbine blades, which provides industry and academia with a set of method of flow-induced resonance analysis. First, geometric shape of 3.6-MW and 5-MW large-scale wind turbine blades are designed, plotted. After that, steady flow field analysis is performed to calculate rated power to confirm accuracy of the model. Second, modal analysis is performed by using finite element analysis software “COMSOL Multiphysics”. Through simulation verification, we confirm accuracy of the simulation compared with references and theory. After that, we study the natural frequency of two blades for different rotor speed, and then study if blades are resonant with operating frequency. Moreover, we perform modal analysis for 5-MW wind turbine tower, and then study if tower is coupled with blade. Third, wind-induced vibration analysis is performed by using finite element analysis software “COMSOL Multiphysics”, too. Through simulation verification, we confirm accuracy of the simulation compared with references. After that, we choose 6 sections of each blade to calculate Von Karman vortex shedding frequency for normal wind conditions and extreme wind conditions, and then study if blades are resonant with vortex shedding frequency. Finally, determination and application of wind-induced vibration damage is performed. Through a variety of references, we obtain the range of resonance wind speed for 6 sections of each blade. After that, we select experimental data of the wind speed per second for 2 days, determine whether there is wind-induced vibration damage on blades.
author2 Huei-Jeng Lin
author_facet Huei-Jeng Lin
Bo-Jiun Wu
吳柏均
author Bo-Jiun Wu
吳柏均
spellingShingle Bo-Jiun Wu
吳柏均
Methodology and Application of Flow-induced Resonance in Wind Turbine Blades
author_sort Bo-Jiun Wu
title Methodology and Application of Flow-induced Resonance in Wind Turbine Blades
title_short Methodology and Application of Flow-induced Resonance in Wind Turbine Blades
title_full Methodology and Application of Flow-induced Resonance in Wind Turbine Blades
title_fullStr Methodology and Application of Flow-induced Resonance in Wind Turbine Blades
title_full_unstemmed Methodology and Application of Flow-induced Resonance in Wind Turbine Blades
title_sort methodology and application of flow-induced resonance in wind turbine blades
publishDate 2015
url http://ndltd.ncl.edu.tw/handle/45954226298330535484
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