A model of human skin under large amplitude oscillatory shear
A model of human skin under large amplitude oscillatory shear
Skin mechanics is of importance in various fields of research when accurate predictions of the mechanical response of skin is essential. This study aims to develop a new constitutive model for human skin that is capable of describing the heterogeneous, nonlinear viscoelastic mechanical response of human skin under shear deformation. This complex mechanical response was determined by performing large amplitude oscillatory shear (LAOS) experiments on ex vivo human skin samples. It was combined with digital image correlation (DIC) on the cross-sectional area to assess heterogeneity. The skin is modeled as a one-dimensional layered structure, with every sublayer behaving as a nonlinear viscoelastic material. Heterogeneity is implemented by varying the stiffness with skin depth. Using an iterative parameter estimation method all model parameters were optimized simultaneously. The model accurately captures strain stiffening, shear thinning, softening effect and nonlinear viscous dissipation, as experimentally observed in the mechanical response to LAOS. The heterogeneous properties described by the model were in good agreement with the experimental DIC results. The presented mathematical description forms the basis for a future constitutive model definition that, by implementation in a finite element method, has the capability of describing the full 3D mechanical behavior of human skin.
423-432
Soetens, J.F.J.
c1f04184-0447-4178-a13d-0b4f007ada6e
van Vijven, M.
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Bader, D.L.
9884d4f6-2607-4d48-bf0c-62bdcc0d1dbf
Peters, G.W.M.
c17f0fa0-5cdd-4428-9726-dd4d696e1921
Oomens, C.W.J.
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1 October 2018
Soetens, J.F.J.
c1f04184-0447-4178-a13d-0b4f007ada6e
van Vijven, M.
dddbece1-d3a6-4986-a8bc-d2e39f3d8909
Bader, D.L.
9884d4f6-2607-4d48-bf0c-62bdcc0d1dbf
Peters, G.W.M.
c17f0fa0-5cdd-4428-9726-dd4d696e1921
Oomens, C.W.J.
b4884336-5230-4055-9df2-5400c1c57018
Soetens, J.F.J., van Vijven, M., Bader, D.L., Peters, G.W.M. and Oomens, C.W.J.
(2018)
A model of human skin under large amplitude oscillatory shear.
Journal of the Mechanical Behavior of Biomedical Materials, 86, .
(doi:10.1016/j.jmbbm.2018.07.008).
Abstract
Skin mechanics is of importance in various fields of research when accurate predictions of the mechanical response of skin is essential. This study aims to develop a new constitutive model for human skin that is capable of describing the heterogeneous, nonlinear viscoelastic mechanical response of human skin under shear deformation. This complex mechanical response was determined by performing large amplitude oscillatory shear (LAOS) experiments on ex vivo human skin samples. It was combined with digital image correlation (DIC) on the cross-sectional area to assess heterogeneity. The skin is modeled as a one-dimensional layered structure, with every sublayer behaving as a nonlinear viscoelastic material. Heterogeneity is implemented by varying the stiffness with skin depth. Using an iterative parameter estimation method all model parameters were optimized simultaneously. The model accurately captures strain stiffening, shear thinning, softening effect and nonlinear viscous dissipation, as experimentally observed in the mechanical response to LAOS. The heterogeneous properties described by the model were in good agreement with the experimental DIC results. The presented mathematical description forms the basis for a future constitutive model definition that, by implementation in a finite element method, has the capability of describing the full 3D mechanical behavior of human skin.
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Accepted/In Press date: 4 July 2018
e-pub ahead of print date: 11 July 2018
Published date: 1 October 2018
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Local EPrints ID: 422665
URI: http://eprints.soton.ac.uk/id/eprint/422665
ISSN: 1751-6161
PURE UUID: 74385fdf-d02b-4084-a2b7-1a5bd87eafa1
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Date deposited: 30 Jul 2018 16:30
Last modified: 17 Mar 2024 12:08
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Author:
J.F.J. Soetens
Author:
M. van Vijven
Author:
G.W.M. Peters
Author:
C.W.J. Oomens
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