Publication:
A constitutive model for the analysis of second harmonic Lamb waves in unidirectional composites

cris.customurl 4437
cris.virtual.department Festkörpermechanik
cris.virtual.department #PLACEHOLDER_PARENT_METADATA_VALUE#
cris.virtual.departmentbrowse Festkörpermechanik
cris.virtual.departmentbrowse Festkörpermechanik
cris.virtual.departmentbrowse Festkörpermechanik
cris.virtualsource.department 53ef0f44-01d5-4311-9efc-c36e3cf57a3a
cris.virtualsource.department #PLACEHOLDER_PARENT_METADATA_VALUE#
dc.contributor.author Rauter, Natalie
dc.contributor.author Lammering, Rolf
dc.date.issued 2018
dc.description.abstract In recent research on Structural Health Monitoring (SHM) guided waves, especially nonlinear Lamb waves, turned out to be a suitable means for monitoring material deterioration in thin-walled structures. In the corresponding numerical simulations on wave propagation the nonlinear elastic theory by Murnaghan is often implemented, which requires 14 material parameters for transversely isotropic materials. Enhancing an existing linear strain energy potential, a new nonlinear hyperelastic transversely isotropic material model is introduced which reduces the number of independent material parameters to six. In order to verify the applicability of the presented material model with respect to the simulation of nonlinear wave propagation in composite structures, and the generation of higher harmonic wave modes, the existence of a power flux from the fundamental to the higher harmonic mode is investigated analytically and numerically. Analytical considerations show that this power flux exists like in Murnaghan's theory. For the numerical validation the S0–S0 mode pair in the low frequency range is used. Therefore, the amplitude of the second harmonic wave mode is oscillating with increasing propagation distance. This behavior is in excellent agreement with the theoretical prediction. It is shown further, that even for an oscillating behavior the amplitude of the second harmonic mode can be approximated by a linear curve fit over a considerably propagation distance and hence shows a quasi cumulative behavior. Therefore, the introduced material model is an advantageous alternative to Murnaghan's theory to simulate the second harmonic Lamb wave generation due to in composite structures. © 2017 Elsevier Ltd
dc.description.version NA
dc.identifier.citation Enthalten in: International journal of solids and structures. - New York, NY [u.a.] : Elsevier, 1965. - Online-Ressource . - 2017
dc.identifier.doi 10.1016/j.ijsolstr.2017.11.019
dc.identifier.issn 0020-7683
dc.identifier.uri https://openhsu.ub.hsu-hh.de/handle/10.24405/4437
dc.language.iso en
dc.publisher Elsevier
dc.relation.journal International Journal of Solids and Structures
dc.relation.orgunit Mechanik
dc.rights.accessRights metadata only access
dc.subject Harmonic Analysis
dc.subject Strain Energy
dc.subject Surface Wave
dc.title A constitutive model for the analysis of second harmonic Lamb waves in unidirectional composites
dc.type Research article
dcterms.bibliographicCitation.originalpublisherplace New York, NY
dspace.entity.type Publication
hsu.peerReviewed
hsu.uniBibliography
oaire.citation.endPage 196
oaire.citation.startPage 184
oaire.citation.volume 135
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