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Model-Based Fatigue Prognosis of Fiber-Reinforced Laminates Exhibiting Concurrent Damage MechanismsPrognostics of large composite structures is a topic of increasing interest in the field of structural health monitoring for aerospace, civil, and mechanical systems. Along with recent advancements in real-time structural health data acquisition and processing for damage detection and characterization, model-based stochastic methods for life prediction are showing promising results in the literature. Among various model-based approaches, particle-filtering algorithms are particularly capable in coping with uncertainties associated with the process. These include uncertainties about information on the damage extent and the inherent uncertainties of the damage propagation process. Some efforts have shown successful applications of particle filtering-based frameworks for predicting the matrix crack evolution and structural stiffness degradation caused by repetitive fatigue loads. Effects of other damage modes such as delamination, however, are not incorporated in these works. It is well established that delamination and matrix cracks not only co-exist in most laminate structures during the fatigue degradation process but also affect each other's progression. Furthermore, delamination significantly alters the stress-state in the laminates and accelerates the material degradation leading to catastrophic failure. Therefore, the work presented herein proposes a particle filtering-based framework for predicting a structure's remaining useful life with consideration of multiple co-existing damage-mechanisms. The framework uses an energy-based model from the composite modeling literature. The multiple damage-mode model has been shown to suitably estimate the energy release rate of cross-ply laminates as affected by matrix cracks and delamination modes. The model is also able to estimate the reduction in stiffness of the damaged laminate. This information is then used in the algorithms for life prediction capabilities. First, a brief summary of the energy-based damage model is provided. Then, the paper describes how the model is embedded within the prognostic framework and how the prognostics performance is assessed using observations from run-to-failure experiments
Document ID
20160008945
Acquisition Source
Ames Research Center
Document Type
Conference Paper
Authors
Corbetta, M.
(Politecnico di Milano Milan, Italy)
Sbarufatti, C.
(Politecnico di Milano Milan, Italy)
Saxena, A.
(General Electric Global Research San Ramon, CA, United States)
Giglio, M.
(Politecnico di Milano Milan, Italy)
Goebel, K.
(Universities Space Research Association Moffett Field, CA, United States)
Date Acquired
July 12, 2016
Publication Date
July 10, 2016
Subject Category
Composite Materials
Report/Patent Number
ARC-E-DAA-TN31177
Report Number: ARC-E-DAA-TN31177
Meeting Information
Meeting: European Conference on Structural Control (EACS 2016)
Location: Sheffield
Country: United Kingdom
Start Date: July 11, 2016
End Date: July 13, 2016
Sponsors: European Association for the Control of Structures (EACS)
Distribution Limits
Public
Copyright
Public Use Permitted.
Keywords
Prognostics
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