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Rubber is modeled as hyperelastic material.
To account for the large deformation of tissues, the collagen fibrils were modeled as hyperelastic neo-Hookean or Mooney Rivlin materials.
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The elastomer matrix is soft and possesses a relatively low dielectric permittivity, and is modeled as a hyperelastic dielectric material.
The annulus substance was modeled as a hyperelastic material, and the nucleus pulposus was modeled as an incompressible substance because it displayed both solid and liquid viscoelastic charactereristics.
The polymer has been modeled as an isothermal hyperelastic material.
The scaffold was modeled as an orthotropic hyperelastic material using a generalized Fung-type constitutive model.
Tracheal wall is modeled as a fiber reinforced hyperelastic solid material in which the anisotropy due to the orientation of the fibers is taken into account.
The tracheal wall is modeled as a fiber reinforced hyperelastic solid material in which we introduced the anisotropy due to the orientation of the fibers.
The preconditioned tissue is modeled as an isotropic composite of a hyperelastic component and a dissipative (inelastic) component.
The fibers are modeled as linear-elastic solid elements distributed in a hyperelastic matrix according to a random arrangement based on experimental observations.
The annulus ground substance was modeled based on an incompressible, hyperelastic, 2-parameter (C1, C2) Mooney-Rivlin formulation, and the nucleus pulposus was modeled as an incompressible fluid.
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