Study of Applying IEDs and FMEA Fuzzy Rules on CBM Management Systems

碩士 === 國立臺灣科技大學 === 電機工程系 === 98 === This thesis presents an architecture of conditioning based maintenance management systems by integrating IEDs (Intelligent Electrical Device) and FMEA (Failure Mode and Effect Analysis) Fuzzy rules. IEDs acquire analog signals and send messages which are paramete...

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Main Authors: Cheng-chun Wang, 王政群
Other Authors: none
Format: Others
Language:zh-TW
Published: 2010
Online Access:http://ndltd.ncl.edu.tw/handle/92991877203944642920
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spelling ndltd-TW-098NTUS54420432016-04-22T04:23:46Z http://ndltd.ncl.edu.tw/handle/92991877203944642920 Study of Applying IEDs and FMEA Fuzzy Rules on CBM Management Systems 應用智慧型電子裝置及失效模式與影響分析模糊規則於以電力設備狀態為基礎之維護管理系統 Cheng-chun Wang 王政群 碩士 國立臺灣科技大學 電機工程系 98 This thesis presents an architecture of conditioning based maintenance management systems by integrating IEDs (Intelligent Electrical Device) and FMEA (Failure Mode and Effect Analysis) Fuzzy rules. IEDs acquire analog signals and send messages which are parameters for estimating conditions of electrical equipments to remote servers by Ethernet. This thesis proposes risk priority number to analyse and optimize the current maintenance systems which inspect conditions of electrical equipments based on time period. Furthermore, the experts can establish fine fuzzy rules with the analysis results. The conditioning based maintenance management systems integrate data distributed in different departments and information acquired by IEDs to infer the possible failure rate of components of electrical equipments with fuzzy rules. Therefore, operators can look for the best chance to maintain the facilities. This thesis establishes fuzzy rules to forecast failure rates of iron cores, copper windings, and tap changers of power transformers. Eight examples demonstrate the inference process of failure rates with different index inputs related to the conditions of power transformers. The final results show the fuzzy rule can judge the condition of the power transformer. none 辜志承 2010 學位論文 ; thesis 126 zh-TW
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description 碩士 === 國立臺灣科技大學 === 電機工程系 === 98 === This thesis presents an architecture of conditioning based maintenance management systems by integrating IEDs (Intelligent Electrical Device) and FMEA (Failure Mode and Effect Analysis) Fuzzy rules. IEDs acquire analog signals and send messages which are parameters for estimating conditions of electrical equipments to remote servers by Ethernet. This thesis proposes risk priority number to analyse and optimize the current maintenance systems which inspect conditions of electrical equipments based on time period. Furthermore, the experts can establish fine fuzzy rules with the analysis results. The conditioning based maintenance management systems integrate data distributed in different departments and information acquired by IEDs to infer the possible failure rate of components of electrical equipments with fuzzy rules. Therefore, operators can look for the best chance to maintain the facilities. This thesis establishes fuzzy rules to forecast failure rates of iron cores, copper windings, and tap changers of power transformers. Eight examples demonstrate the inference process of failure rates with different index inputs related to the conditions of power transformers. The final results show the fuzzy rule can judge the condition of the power transformer.
author2 none
author_facet none
Cheng-chun Wang
王政群
author Cheng-chun Wang
王政群
spellingShingle Cheng-chun Wang
王政群
Study of Applying IEDs and FMEA Fuzzy Rules on CBM Management Systems
author_sort Cheng-chun Wang
title Study of Applying IEDs and FMEA Fuzzy Rules on CBM Management Systems
title_short Study of Applying IEDs and FMEA Fuzzy Rules on CBM Management Systems
title_full Study of Applying IEDs and FMEA Fuzzy Rules on CBM Management Systems
title_fullStr Study of Applying IEDs and FMEA Fuzzy Rules on CBM Management Systems
title_full_unstemmed Study of Applying IEDs and FMEA Fuzzy Rules on CBM Management Systems
title_sort study of applying ieds and fmea fuzzy rules on cbm management systems
publishDate 2010
url http://ndltd.ncl.edu.tw/handle/92991877203944642920
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