Degradation Trend Construction of Aircraft Engine Using Complex Network Model

Yongsheng Huang, Yongbo Li, Khandaker Noman, Shun Wang

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Health condition monitoring (HCM) of an aircraft engine is crucial to enhance its reliability running. In this paper, a novel method is proposed using the complex model to monitor its degradation trend. With the help of the data collected by multi-sensors, a complex dynamic model is built using the data-driven approach, which aims to achieve the purpose of HCM of aircraft engine. First, the Gath-Geva fuzzy clustering method is utilized for health condition division. Second, the network model based on correlation analysis is conducted. Finally, the dynamic improved logistic model is developed to describe the changes of sensors data of aircraft engine degradation trend. To verify the effectiveness of the proposed method, simulated aircraft gas turbofan engine data is utilized for validation. The results demonstrate that our method is effective to track its degradation process of aircraft gas turbofan engine.

Original languageEnglish
Title of host publicationProceedings of IncoME-VI and TEPEN 2021 - Performance Engineering and Maintenance Engineering
EditorsHao Zhang, Guojin Feng, Hongjun Wang, Fengshou Gu, Jyoti K. Sinha
PublisherSpringer Science and Business Media B.V.
Pages519-528
Number of pages10
ISBN (Print)9783030990749
DOIs
StatePublished - 2023
Event6th International Conference on Maintenance Engineering, IncoME-VI and the Conference of the Efficiency and Performance Engineering Network, TEPEN 2021 - Tianjin, China
Duration: 20 Oct 202123 Oct 2021

Publication series

NameMechanisms and Machine Science
Volume117
ISSN (Print)2211-0984
ISSN (Electronic)2211-0992

Conference

Conference6th International Conference on Maintenance Engineering, IncoME-VI and the Conference of the Efficiency and Performance Engineering Network, TEPEN 2021
Country/TerritoryChina
CityTianjin
Period20/10/2123/10/21

Keywords

  • Aircraft engine
  • Complex network
  • Correlation analysis
  • Health condition monitoring

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