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On the Influence of Capillary-Based Structural Health Monitoring on Fatigue Crack Initiation and Propagation in Straight Lugs

This paper addresses the influence on the fatigue life induced by the implementation of a capillary-based structural health monitoring methodology, patented under the name eSHM. It consists in integrating structurally small and pressurized capillaries into the component, so that when a fatigue crack...

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Autores principales: Moonens, Marc, Wyart, Eric, De Baere, Dieter, Hinderdael, Michaël, Ertveldt, Julien, Jardon, Zoé, Arroud, Galid, Guillaume, Patrick
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6766198/
https://www.ncbi.nlm.nih.gov/pubmed/31547387
http://dx.doi.org/10.3390/ma12182965
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author Moonens, Marc
Wyart, Eric
De Baere, Dieter
Hinderdael, Michaël
Ertveldt, Julien
Jardon, Zoé
Arroud, Galid
Guillaume, Patrick
author_facet Moonens, Marc
Wyart, Eric
De Baere, Dieter
Hinderdael, Michaël
Ertveldt, Julien
Jardon, Zoé
Arroud, Galid
Guillaume, Patrick
author_sort Moonens, Marc
collection PubMed
description This paper addresses the influence on the fatigue life induced by the implementation of a capillary-based structural health monitoring methodology, patented under the name eSHM. It consists in integrating structurally small and pressurized capillaries into the component, so that when a fatigue crack breaches the capillary network, it results in a leak flow to the open atmosphere and loss of pressure in the galleries which is detected by a pressure sensor. The novelty of the proposed system resides in the opportunity to locate the capillary according to the designer’s need, as one resorts to additive manufacturing for the part production. However, the presence of these galleries in highly stressed regions raises concerns about crack initiation at the capillary itself and accelerated fatigue crack growth. This paper aims at the quantification of the influence the eSHM has on the fatigue behavior of the component and the determination whether this influence is significant or not. To that purpose, numerical simulations on a straight lug component, using the finite elements and eXtended Finite Elements Methods (XFEM), are performed. Various capillary sizes and shapes are assessed, so as to enable a general conclusion on the impact of the eSHM methodology in straight lugs.
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spelling pubmed-67661982019-09-30 On the Influence of Capillary-Based Structural Health Monitoring on Fatigue Crack Initiation and Propagation in Straight Lugs Moonens, Marc Wyart, Eric De Baere, Dieter Hinderdael, Michaël Ertveldt, Julien Jardon, Zoé Arroud, Galid Guillaume, Patrick Materials (Basel) Article This paper addresses the influence on the fatigue life induced by the implementation of a capillary-based structural health monitoring methodology, patented under the name eSHM. It consists in integrating structurally small and pressurized capillaries into the component, so that when a fatigue crack breaches the capillary network, it results in a leak flow to the open atmosphere and loss of pressure in the galleries which is detected by a pressure sensor. The novelty of the proposed system resides in the opportunity to locate the capillary according to the designer’s need, as one resorts to additive manufacturing for the part production. However, the presence of these galleries in highly stressed regions raises concerns about crack initiation at the capillary itself and accelerated fatigue crack growth. This paper aims at the quantification of the influence the eSHM has on the fatigue behavior of the component and the determination whether this influence is significant or not. To that purpose, numerical simulations on a straight lug component, using the finite elements and eXtended Finite Elements Methods (XFEM), are performed. Various capillary sizes and shapes are assessed, so as to enable a general conclusion on the impact of the eSHM methodology in straight lugs. MDPI 2019-09-12 /pmc/articles/PMC6766198/ /pubmed/31547387 http://dx.doi.org/10.3390/ma12182965 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Moonens, Marc
Wyart, Eric
De Baere, Dieter
Hinderdael, Michaël
Ertveldt, Julien
Jardon, Zoé
Arroud, Galid
Guillaume, Patrick
On the Influence of Capillary-Based Structural Health Monitoring on Fatigue Crack Initiation and Propagation in Straight Lugs
title On the Influence of Capillary-Based Structural Health Monitoring on Fatigue Crack Initiation and Propagation in Straight Lugs
title_full On the Influence of Capillary-Based Structural Health Monitoring on Fatigue Crack Initiation and Propagation in Straight Lugs
title_fullStr On the Influence of Capillary-Based Structural Health Monitoring on Fatigue Crack Initiation and Propagation in Straight Lugs
title_full_unstemmed On the Influence of Capillary-Based Structural Health Monitoring on Fatigue Crack Initiation and Propagation in Straight Lugs
title_short On the Influence of Capillary-Based Structural Health Monitoring on Fatigue Crack Initiation and Propagation in Straight Lugs
title_sort on the influence of capillary-based structural health monitoring on fatigue crack initiation and propagation in straight lugs
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6766198/
https://www.ncbi.nlm.nih.gov/pubmed/31547387
http://dx.doi.org/10.3390/ma12182965
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