Volume 1: Turbo Expo 2005 2005
DOI: 10.1115/gt2005-69072
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Aircraft Gas Turbine Engines’ Technical Condition Identification System

Abstract: Abstract-In this paper is shown that the probability-statistic methods application, especially at the early stage of the aviation gas turbine engine (GTE) technical condition diagnosing, when the flight information has property of the fuzzy, limitation and uncertainty is unfounded. Hence is considered the efficiency of application of new technology Soft Computing at these diagnosing stages with the using of the Fuzzy Logic and Neural Networks methods. Training with high accuracy of fuzzy multiple linear and no… Show more

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Cited by 5 publications
(3 citation statements)
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“…The basic characteristics of correlation coefficients (Fig 6; Appendix) show the necessity of using fuzzy NN for the processing of flight information. In that case correct application of this approach on describing up of the GTE technical condition changes is possible by fuzzy linear or non-linear model (Pashayev et al 2004a, Abdullayev et al 2005.…”
Section: Monitoring Gte Condition Using Results Of Complex Analysis Omentioning
confidence: 99%
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“…The basic characteristics of correlation coefficients (Fig 6; Appendix) show the necessity of using fuzzy NN for the processing of flight information. In that case correct application of this approach on describing up of the GTE technical condition changes is possible by fuzzy linear or non-linear model (Pashayev et al 2004a, Abdullayev et al 2005.…”
Section: Monitoring Gte Condition Using Results Of Complex Analysis Omentioning
confidence: 99%
“…These models are made for each correct subcontrol engine of the fleet during the initial period of operation. On the basis of the analysis of the values of the regression coefficient (coefficients of influence) of all engine's multiple regression models with the help of mathematical statistics base and admissible range of coefficients (Abdullayev et al 2005, Pashayev et al 2004b.…”
Section: Monitoring Gte Condition Using Regression Analysis and Kalmamentioning
confidence: 99%
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