Publication:
Experimental evidence of shear waves in fractional viscoelastic rheological models.

dc.contributor.authorGomez, Antonio
dc.contributor.authorCallejas, Antonio
dc.contributor.authorRus, Guillermo
dc.contributor.authorSaffari, Nader
dc.contributor.funderthe regional government of Andalusia, Spain,
dc.contributor.funderMechanical Engineering Department of University College London, United Kingdom
dc.contributor.funderMinistry of Education and Science, Spain,
dc.date.accessioned2023-05-03T13:26:44Z
dc.date.available2023-05-03T13:26:44Z
dc.date.issued2022-04-07
dc.description.abstractFractional viscoelastic rheological models, such as the Kelvin Voigt Fractional Derivative model, have been proposed in the literature for modelling shear wave propagation in soft tissue. In this article, our previously developed wave propagation model for transluminal propagation based on a Kelvin Voigt Fractional Derivative wave equation is experimentally validated. The transluminal procedure uses the transmission and detection of shear waves through the luminal wall. The model was compared against high-speed camera observations in translucent elastography phantoms with similar viscoelastic properties to prostate tissue. An ad hoc cross-correlation procedure was used to reconstruct the angular displacement from the high-speed camera observations. Rheometry and shear wave elastography were used for characterising the shear wave velocity dispersion curve for the phantoms. Fractional viscoelastic properties were derived after fitting the dispersion curve to its analytical expression. Propagation features and amplitude spectra from simulations and high-speed camera observations were compared. The obtained results indicate that the model replicates the experimental observations with acceptable accuracy. The model presented here provides a useful tool to model transluminal procedures based on wave propagation and its interaction with the mechanical properties of the tissue outside the lumen.
dc.description.sponsorshipThe authors want to acknowledge the Fluids Mechanics Research Group from University of Jaen for the use of their facilities and support, Miguel Riveiro for his assistance in the signal generation, and Lydia Fernandez for her collaboration in the phantom fabrication. The first author was supported by a Talentia scholarship (Grant C2012H-75146405T-1) from the regional government of Andalusia, Spain, for the two first years of his PhD programme at University College London, United Kingdom. The other 2 years of his PhD programme he was supported by the Mechanical Engineering Department of University College London, United Kingdom. Other minor financial support was provided by the Ministry of Education and Science, Spain, Grants DPI2017-83859-R, EQC2018-004508-P, UNGR15-CE3664, PID2020-115372RB-I00 and PDC2021-120945-I00, and by the regional government of Andalusia, Spain, grants SOMM17/6109/UGR, B-TEP-026-UGR18, IE2017-5537 and P18-RT-1653.
dc.description.versionSi
dc.identifier.citationGomez A, Callejas A, Rus G, Saffari N. Experimental evidence of shear waves in fractional viscoelastic rheological models. Sci Rep. 2022 May 6;12(1):7448.
dc.identifier.doi10.1038/s41598-022-11490-4
dc.identifier.essn2045-2322
dc.identifier.pmcPMC9076910
dc.identifier.pmid35523858
dc.identifier.pubmedURLhttps://www.ncbi.nlm.nih.gov/pmc/articles/PMC9076910/pdf
dc.identifier.unpaywallURLhttps://www.nature.com/articles/s41598-022-11490-4.pdf
dc.identifier.urihttp://hdl.handle.net/10668/19603
dc.issue.number1
dc.journal.titleScientific reports
dc.journal.titleabbreviationSci Rep
dc.language.isoen
dc.organizationInstituto de Investigación Biosanitaria de Granada (ibs.GRANADA)
dc.page.number15
dc.provenanceRealizada la curación de contenido 28/08/2024
dc.publisherNature Publishing Group
dc.pubmedtypeJournal Article
dc.pubmedtypeResearch Support, Non-U.S. Gov't
dc.relation.projectIDC2012H-75146405T-1
dc.relation.projectIDDPI2017-83859-R
dc.relation.projectIDEQC2018-004508-P
dc.relation.projectIDUNGR15-CE3664
dc.relation.projectIDPID2020-115372RB-I00
dc.relation.projectIDPDC2021-120945-I00
dc.relation.projectIDOMM17/6109/UGR
dc.relation.projectIDB-TEP-026-UGR18
dc.relation.projectIDIE2017-5537
dc.relation.projectIDP18-RT-1653
dc.relation.publisherversionhttps://doi.org/10.1038/s41598-022-11490-4
dc.rightsAttribution 4.0 International
dc.rights.accessRightsopen access
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.subjectElasticity Imaging Techniques
dc.subjectMechanical engineering
dc.subjectBiomedical engineering
dc.subject.decsHumanos
dc.subject.decsMasculino
dc.subject.decsReología
dc.subject.decsReproducción
dc.subject.decsFantasmas de imagen
dc.subject.decsViscosidad
dc.subject.meshHumans
dc.subject.meshMale
dc.subject.meshReproduction
dc.subject.meshRheology
dc.subject.meshPhantoms, Imaging
dc.subject.meshViscosity
dc.titleExperimental evidence of shear waves in fractional viscoelastic rheological models.
dc.typeresearch article
dc.type.hasVersionVoR
dc.volume.number12
dspace.entity.typePublication

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