Publication:
Numerical simulation of the elastic–ideal plastic material behavior of short fiber-reinforced composites including its spatial distribution with an experimental validation

cris.customurl 14985
cris.virtual.department Festkörpermechanik
cris.virtual.departmentbrowse Festkörpermechanik
cris.virtual.departmentbrowse Festkörpermechanik
cris.virtual.departmentbrowse Festkörpermechanik
cris.virtual.departmentbrowse Festkörpermechanik
cris.virtual.departmentbrowse Festkörpermechanik
cris.virtual.departmentbrowse Festkörpermechanik
cris.virtual.departmentbrowse Festkörpermechanik
cris.virtualsource.department 53ef0f44-01d5-4311-9efc-c36e3cf57a3a
dc.contributor.author Rauter, Natalie
dc.date.issued 2022-10-17
dc.description.abstract For the numerical simulation of components made of short fiber-reinforced composites, the correct prediction of the deformation including the elastic and plastic behavior and its spatial distribution is essential. When using purely deterministic modeling approaches, the information of the probabilistic microstructure is not included in the simulation process. One possible approach for the integration of stochastic information is the use of random fields. In this study, numerical simulations of tensile test specimens were conducted utilizing a finite deformation elastic–ideal plastic material model. A selection of the material parameters covering the elastic and plastic domain are represented by cross-correlated second-order Gaussian random fields to incorporate the probabilistic nature of the material parameters. To validate the modeling approach, tensile tests until failure were carried out experimentally, which confirmed the assumption of the spatially distributed material behavior in both the elastic and plastic domain. Since the correlation lengths of the random fields cannot be determined by pure analytic treatments, additionally numerical simulations were performed for different values of the correlation length. The numerical simulations endorsed the influence of the correlation length on the overall behavior. For a correlation length of 5 (Formula presented.) (Formula presented.), a good conformity with the experimental results was obtained. Therefore, it was concluded that the presented modeling approach was suitable to predict the elastic and plastic deformation of a set of tensile test specimens made of short fiber-reinforced composite sufficiently.
dc.description.version VoR
dc.identifier.articlenumber 10483
dc.identifier.doi 10.3390/app122010483
dc.identifier.issn 2076-3417
dc.identifier.scopus 2-s2.0-85140878488
dc.identifier.uri https://openhsu.ub.hsu-hh.de/handle/10.24405/14985
dc.language.iso en
dc.publisher MDPI
dc.relation.journal Applied Sciences (Switzerland)
dc.relation.orgunit Mechanik
dc.rights.accessRights metadata only access
dc.subject Numerical simulation
dc.subject Plasticity
dc.subject Random fields
dc.subject Short fiber-reinforced composite
dc.title Numerical simulation of the elastic–ideal plastic material behavior of short fiber-reinforced composites including its spatial distribution with an experimental validation
dc.type Research article
dcterms.bibliographicCitation.originalpublisherplace Basel
dcterms.isPartOf https://doi.org/10.24405/14977
dspace.entity.type Publication
hsu.opac.importErsterfassung 0705:02-11-22
hsu.peerReviewed
hsu.uniBibliography
oaire.citation.issue 20
oaire.citation.volume 12
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