Issue |
J. Phys. IV France
Volume 105, March 2003
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Page(s) | 281 - 288 | |
DOI | https://doi.org/10.1051/jp4:20030198 |
J. Phys. IV France 105 (2003) 281
DOI: 10.1051/jp4:20030198
Directional model for anisotropic hyperelastic rubber-like materials
J. Diani1, M. Brieu2, J.M. Vacherand3 and A. Rezgui31 Laboratoire LM3, ENSAM de Paris, 151 boulevard de l'Hôpital, 75013 Paris, France
2 Laboratoire LML, IUT A, Université des Sciences et Technologies de Lille, 2 rue de la Recherche, BP. 179, 59653 Villeneuve-d'Ascq cedex, France
3 Manufacture Française des Pneumatiques Michelin, Centre de Technologies Ladoux, 63040 Clermont-Ferrand cedex 09, France
Abstract
A material direction-dependent constitutive model has been formulated for large
deformation of anisotropic rubber-like materials. Anisotropic behavior has been observed in
calendered plates of filled elastomers. Strain energy density functions characterizing rubber-like
material behavior are usually dependent on the principal stretch ratios and are unable to take into
account anisotropy. The proposed strain energy density depends on material directions and
accounts for anisotropy. Model material directions have simply been chosen using existing
macromolecular model chains geometry. The material strain energy density is given as the sum,
over all material directions, of the elementary directional strain energy density. This elementary
strain energy is determined by analogy with chain entropy of macromolecular models using the
Langevin statistics. To evaluate the effectiveness of the proposed model, it is compared to uniaxial
tension experimental data of anisotropic hyperelastic rubber-like materials.
© EDP Sciences 2003