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dc.contributor.authorNí Annaidh, Aisling
dc.contributor.authorBruyère, Karine
dc.contributor.authorDestrade, Michel
dc.contributor.authorGilchrist, Michael D.
dc.contributor.authorMaurini, Corrado
dc.contributor.authorOtténio, Melanie
dc.contributor.authorSaccomandi, Giuseppe
dc.date.accessioned2018-09-20T15:59:50Z
dc.date.available2018-09-20T15:59:50Z
dc.date.issued2012-03-17
dc.identifier.citationNí Annaidh, Aisling; Bruyère, Karine; Destrade, Michel; Gilchrist, Michael D. Maurini, Corrado; Otténio, Melanie; Saccomandi, Giuseppe (2012). Automated estimation of collagen fibre dispersion in the dermis and its contribution to the anisotropic behaviour of skin. Annals of Biomedical Engineering 40 (8), 1666-1678
dc.identifier.issn0090-6964,1573-9686
dc.identifier.urihttp://hdl.handle.net/10379/10254
dc.description.abstractCollagen fibres play an important role in the mechanical behaviour of many soft tissues. Modelling of such tissues now often incorporates a collagen fibre distribution. However, the availability of accurate structural data has so far lagged behind the progress of anisotropic constitutive modelling. Here, an automated process is developed to identify the orientation of collagen fibres using inexpensive and relatively simple techniques. The method uses established histological techniques and an algorithm implemented in the MATLAB image processing toolbox. It takes an average of 15 s to evaluate one image, compared to several hours if assessed visually. The technique was applied to histological sections of human skin with different Langer line orientations and a definite correlation between the orientation of Langer lines and the preferred orientation of collagen fibres in the dermis was observed. The structural parameters of the Gasser-Ogden-Holzapfel (GOH) model were all successfully evaluated. The mean dispersion factor for the dermis was The constitutive parameters mu, k (1) and k (2) were evaluated through physically-based, least squares curve-fitting of experimental test data. The values found for mu, k (1) and k (2) were 0.2014 MPa, 243.6 and 0.1327, respectively. Finally, the above model was implemented in ABAQUS/Standard and a finite element (FE) computation was performed of uniaxial extension tests on human skin. It is expected that the results of this study will assist those wishing to model skin, and that the algorithm described will be of benefit to those who wish to evaluate the collagen dispersion of other soft tissues.
dc.publisherSpringer Nature
dc.relation.ispartofAnnals of Biomedical Engineering
dc.rightsAttribution-NonCommercial-NoDerivs 3.0 Ireland
dc.rights.urihttps://creativecommons.org/licenses/by-nc-nd/3.0/ie/
dc.subjectfibre orientation
dc.subjectanisotropic
dc.subjectskin
dc.subjectcollagen fibres
dc.subjectmechanical-properties
dc.subjectbiaxial tests
dc.subjectorientation
dc.subjectmodel
dc.subjecttissues
dc.titleAutomated estimation of collagen fibre dispersion in the dermis and its contribution to the anisotropic behaviour of skin
dc.typeArticle
dc.identifier.doi10.1007/s10439-012-0542-3
dc.local.publishedsourcehttp://arxiv.org/pdf/1203.4733
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