Study on the Application of Neural Network in the Prognostic and Health Management of Wind Turbine

碩士 === 國立臺灣大學 === 工程科學及海洋工程學研究所 === 104 === This research proposed a back-propagation neural network algorithm to establish Wind Power Forecasting model and implement the Health Assessment of wind turbine by Health Index which is defined using the error between forecast power and actually power....

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Main Authors: Hsun-Chih Chan, 詹勳智
Other Authors: 蔡進發
Format: Others
Language:zh-TW
Published: 2016
Online Access:http://ndltd.ncl.edu.tw/handle/79475930825065091218
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spelling ndltd-TW-104NTU053450372016-10-30T04:17:02Z http://ndltd.ncl.edu.tw/handle/79475930825065091218 Study on the Application of Neural Network in the Prognostic and Health Management of Wind Turbine 類神經網路在風機預兆式健康管理上的應用研究 Hsun-Chih Chan 詹勳智 碩士 國立臺灣大學 工程科學及海洋工程學研究所 104 This research proposed a back-propagation neural network algorithm to establish Wind Power Forecasting model and implement the Health Assessment of wind turbine by Health Index which is defined using the error between forecast power and actually power. Based on wind turbine NO.4 in Linkou of Taipower, the system of prognostics and health management was set up with the data collected by the supervisory control and data acquisition(SCADA) system from 2012 to 2015. Then the Elman neural network was used to get the degradation of health index. Finally, health remaining useful life time of the wind turbine was predicted from the SCADA data. The analysis shows that the health remaining useful life time of the wind turbine NO.4 in Linkou of Taipower is about 15 years if the health index is defined as 0.15. The health assessment and health remaining useful life time of the wind turbine can be forecasted by the proposed neural network prognostics model and the criteria of health index. The developed prognostics and health management model can be used for wind turbine maintenance. 蔡進發 2016 學位論文 ; thesis 71 zh-TW
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language zh-TW
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description 碩士 === 國立臺灣大學 === 工程科學及海洋工程學研究所 === 104 === This research proposed a back-propagation neural network algorithm to establish Wind Power Forecasting model and implement the Health Assessment of wind turbine by Health Index which is defined using the error between forecast power and actually power. Based on wind turbine NO.4 in Linkou of Taipower, the system of prognostics and health management was set up with the data collected by the supervisory control and data acquisition(SCADA) system from 2012 to 2015. Then the Elman neural network was used to get the degradation of health index. Finally, health remaining useful life time of the wind turbine was predicted from the SCADA data. The analysis shows that the health remaining useful life time of the wind turbine NO.4 in Linkou of Taipower is about 15 years if the health index is defined as 0.15. The health assessment and health remaining useful life time of the wind turbine can be forecasted by the proposed neural network prognostics model and the criteria of health index. The developed prognostics and health management model can be used for wind turbine maintenance.
author2 蔡進發
author_facet 蔡進發
Hsun-Chih Chan
詹勳智
author Hsun-Chih Chan
詹勳智
spellingShingle Hsun-Chih Chan
詹勳智
Study on the Application of Neural Network in the Prognostic and Health Management of Wind Turbine
author_sort Hsun-Chih Chan
title Study on the Application of Neural Network in the Prognostic and Health Management of Wind Turbine
title_short Study on the Application of Neural Network in the Prognostic and Health Management of Wind Turbine
title_full Study on the Application of Neural Network in the Prognostic and Health Management of Wind Turbine
title_fullStr Study on the Application of Neural Network in the Prognostic and Health Management of Wind Turbine
title_full_unstemmed Study on the Application of Neural Network in the Prognostic and Health Management of Wind Turbine
title_sort study on the application of neural network in the prognostic and health management of wind turbine
publishDate 2016
url http://ndltd.ncl.edu.tw/handle/79475930825065091218
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