Defect and damage detection in filament wound carbon composite cylinders: A new numerical-experimental methodology based on vibrational analyses

Detalhes bibliográficos
Autor(a) principal: de Menezes V.G.S.*
Data de Publicação: 2021
Outros Autores: Souza G.S.C., Vandepitte D., Tita V., Medeiros, Ricardo De
Tipo de documento: Artigo
Idioma: eng
Título da fonte: Repositório Institucional da Udesc
Texto Completo: https://repositorio.udesc.br/handle/UDESC/3520
Resumo: © 2021 Elsevier LtdDue to its high efficiency, carbon fibre reinforced composite materials are used in many applications, including aeronautical, automotive, and civil structures. A wide range of manufacturing processes are used in composites production and each of these processes is marked by many processing parameters. However, because of the variations that are inherent to the manufacturing method, the final properties of the structure can be strongly affected, mainly the strength values. On the other hand, Vibration-Based Methods (VBM) has the advantage of simplicity and low cost, although it is very sensitive to variations in geometry and material properties. Therefore, it is strategic to deepen the research in this line to generalize the method, allowing its use in the industry as a solution to complicated real-life problems. Thus, this work presents a new numerical-experimental methodology to evaluate the effect of design parameter variations on the dynamic response of laminated composite cylinders. Numerical dynamic analyses are run via a Finite Element code, which is complemented with subroutines written in Python. A Design of Experiments (DoE) strategy is developed to reduce the number of experiments and to evaluate the effect of the design parameter variations. Three sets of nominally different composite cylinders are investigated [(90/60/-60)2/90]s, [(90/30/-30)2/90]s and [90/30/-60/60/-60/30/-30]s. System natural frequencies as taken as the primary response quantities. Frequency Response Functions (FRF) enrich the data set for more elaborate analysis. A DoE strategy is set up to deal with the range of design parameters and process parameters, a full factorial design is selected. Afterward, the results are discussed with proper attention for the potential and limitations of the proposed methodology from the perspective of usage to detect defects in real laminated composite cylinders. Finally, damage indices are calculated using the experimental FRFs magnitudes to quantify the influence of the undamaged and impact damage structure. The general conclusion is that the new methodology provides the foundations for the next generation of software systems for detecting defects from the manufacturing process and damage caused in-service of real composite structures.
id UDESC-2_cb0544b430fde740cde5478fc9fc7c6f
oai_identifier_str oai:repositorio.udesc.br:UDESC/3520
network_acronym_str UDESC-2
network_name_str Repositório Institucional da Udesc
repository_id_str 6391
spelling Defect and damage detection in filament wound carbon composite cylinders: A new numerical-experimental methodology based on vibrational analyses© 2021 Elsevier LtdDue to its high efficiency, carbon fibre reinforced composite materials are used in many applications, including aeronautical, automotive, and civil structures. A wide range of manufacturing processes are used in composites production and each of these processes is marked by many processing parameters. However, because of the variations that are inherent to the manufacturing method, the final properties of the structure can be strongly affected, mainly the strength values. On the other hand, Vibration-Based Methods (VBM) has the advantage of simplicity and low cost, although it is very sensitive to variations in geometry and material properties. Therefore, it is strategic to deepen the research in this line to generalize the method, allowing its use in the industry as a solution to complicated real-life problems. Thus, this work presents a new numerical-experimental methodology to evaluate the effect of design parameter variations on the dynamic response of laminated composite cylinders. Numerical dynamic analyses are run via a Finite Element code, which is complemented with subroutines written in Python. A Design of Experiments (DoE) strategy is developed to reduce the number of experiments and to evaluate the effect of the design parameter variations. Three sets of nominally different composite cylinders are investigated [(90/60/-60)2/90]s, [(90/30/-30)2/90]s and [90/30/-60/60/-60/30/-30]s. System natural frequencies as taken as the primary response quantities. Frequency Response Functions (FRF) enrich the data set for more elaborate analysis. A DoE strategy is set up to deal with the range of design parameters and process parameters, a full factorial design is selected. Afterward, the results are discussed with proper attention for the potential and limitations of the proposed methodology from the perspective of usage to detect defects in real laminated composite cylinders. Finally, damage indices are calculated using the experimental FRFs magnitudes to quantify the influence of the undamaged and impact damage structure. The general conclusion is that the new methodology provides the foundations for the next generation of software systems for detecting defects from the manufacturing process and damage caused in-service of real composite structures.2024-12-05T23:14:23Z2021info:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/article0263-822310.1016/j.compstruct.2021.114548https://repositorio.udesc.br/handle/UDESC/3520Composite Structures276de Menezes V.G.S.*Souza G.S.C.Vandepitte D.Tita V.Medeiros, Ricardo Deengreponame:Repositório Institucional da Udescinstname:Universidade do Estado de Santa Catarina (UDESC)instacron:UDESCinfo:eu-repo/semantics/openAccess2024-12-07T20:41:57Zoai:repositorio.udesc.br:UDESC/3520Biblioteca Digital de Teses e Dissertaçõeshttps://pergamumweb.udesc.br/biblioteca/index.phpPRIhttps://repositorio-api.udesc.br/server/oai/requestri@udesc.bropendoar:63912024-12-07T20:41:57Repositório Institucional da Udesc - Universidade do Estado de Santa Catarina (UDESC)false
dc.title.none.fl_str_mv Defect and damage detection in filament wound carbon composite cylinders: A new numerical-experimental methodology based on vibrational analyses
title Defect and damage detection in filament wound carbon composite cylinders: A new numerical-experimental methodology based on vibrational analyses
spellingShingle Defect and damage detection in filament wound carbon composite cylinders: A new numerical-experimental methodology based on vibrational analyses
de Menezes V.G.S.*
title_short Defect and damage detection in filament wound carbon composite cylinders: A new numerical-experimental methodology based on vibrational analyses
title_full Defect and damage detection in filament wound carbon composite cylinders: A new numerical-experimental methodology based on vibrational analyses
title_fullStr Defect and damage detection in filament wound carbon composite cylinders: A new numerical-experimental methodology based on vibrational analyses
title_full_unstemmed Defect and damage detection in filament wound carbon composite cylinders: A new numerical-experimental methodology based on vibrational analyses
title_sort Defect and damage detection in filament wound carbon composite cylinders: A new numerical-experimental methodology based on vibrational analyses
author de Menezes V.G.S.*
author_facet de Menezes V.G.S.*
Souza G.S.C.
Vandepitte D.
Tita V.
Medeiros, Ricardo De
author_role author
author2 Souza G.S.C.
Vandepitte D.
Tita V.
Medeiros, Ricardo De
author2_role author
author
author
author
dc.contributor.author.fl_str_mv de Menezes V.G.S.*
Souza G.S.C.
Vandepitte D.
Tita V.
Medeiros, Ricardo De
description © 2021 Elsevier LtdDue to its high efficiency, carbon fibre reinforced composite materials are used in many applications, including aeronautical, automotive, and civil structures. A wide range of manufacturing processes are used in composites production and each of these processes is marked by many processing parameters. However, because of the variations that are inherent to the manufacturing method, the final properties of the structure can be strongly affected, mainly the strength values. On the other hand, Vibration-Based Methods (VBM) has the advantage of simplicity and low cost, although it is very sensitive to variations in geometry and material properties. Therefore, it is strategic to deepen the research in this line to generalize the method, allowing its use in the industry as a solution to complicated real-life problems. Thus, this work presents a new numerical-experimental methodology to evaluate the effect of design parameter variations on the dynamic response of laminated composite cylinders. Numerical dynamic analyses are run via a Finite Element code, which is complemented with subroutines written in Python. A Design of Experiments (DoE) strategy is developed to reduce the number of experiments and to evaluate the effect of the design parameter variations. Three sets of nominally different composite cylinders are investigated [(90/60/-60)2/90]s, [(90/30/-30)2/90]s and [90/30/-60/60/-60/30/-30]s. System natural frequencies as taken as the primary response quantities. Frequency Response Functions (FRF) enrich the data set for more elaborate analysis. A DoE strategy is set up to deal with the range of design parameters and process parameters, a full factorial design is selected. Afterward, the results are discussed with proper attention for the potential and limitations of the proposed methodology from the perspective of usage to detect defects in real laminated composite cylinders. Finally, damage indices are calculated using the experimental FRFs magnitudes to quantify the influence of the undamaged and impact damage structure. The general conclusion is that the new methodology provides the foundations for the next generation of software systems for detecting defects from the manufacturing process and damage caused in-service of real composite structures.
publishDate 2021
dc.date.none.fl_str_mv 2021
2024-12-05T23:14:23Z
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.driver.fl_str_mv info:eu-repo/semantics/article
format article
status_str publishedVersion
dc.identifier.uri.fl_str_mv 0263-8223
10.1016/j.compstruct.2021.114548
https://repositorio.udesc.br/handle/UDESC/3520
identifier_str_mv 0263-8223
10.1016/j.compstruct.2021.114548
url https://repositorio.udesc.br/handle/UDESC/3520
dc.language.iso.fl_str_mv eng
language eng
dc.relation.none.fl_str_mv Composite Structures
276
dc.rights.driver.fl_str_mv info:eu-repo/semantics/openAccess
eu_rights_str_mv openAccess
dc.source.none.fl_str_mv reponame:Repositório Institucional da Udesc
instname:Universidade do Estado de Santa Catarina (UDESC)
instacron:UDESC
instname_str Universidade do Estado de Santa Catarina (UDESC)
instacron_str UDESC
institution UDESC
reponame_str Repositório Institucional da Udesc
collection Repositório Institucional da Udesc
repository.name.fl_str_mv Repositório Institucional da Udesc - Universidade do Estado de Santa Catarina (UDESC)
repository.mail.fl_str_mv ri@udesc.br
_version_ 1848168375185833984