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Large strain rate-dependent response of elastomers at different strain rates: convolution integral vs. internal variable formulations
Authors:J-C Petiteau  E Verron  R Othman  H Le Sourne  J-F Sigrist  G Barras
Affiliation:1. école Centrale de Nantes, GeM, UMR CNRS 6183, LUNAM Université, BP 92101, 44321, Nantes cedex 3, France
2. Institut Catholique des Arts et Métiers (ICAM), LUNAM Université, 35 avenue du champ de Man?uvres, 44470, Carquefou, France
3. DCNS Research, 44620, La Montagne, France
4. DGA Techniques Navales, Avenue de la Tour Royale, BP 40915, 83050, Toulon Cedex, France
Abstract:Two different viscoelastic frameworks adapted to large strain rate-dependent response of elastomers are compared; for each approach, a simple model is derived. Within the Finite Linear Viscoelasticity theory, a time convolution integral model based on an extension to solid of the K-BKZ model is proposed. Considering the multiplicative split of the deformation gradient into elastic and inelastic parts, an internal variable model based on a large strain version of the Standard Linear Solid model is considered. In both cases, the strain energy functions involved are chosen neo-Hookean, and then each model possesses three material parameters: two stiffnesses and a viscosity parameter. These parameters are set to ensure the equivalence of the model responses for uniaxial large strain quasi-static and infinitely fast loading conditions, and for uniaxial rate-dependent small strain loading conditions. Considering their responses for different Eulerian strain rates, their differences are investigated with respect to the strain rate; more specifically, both stiffness and dissipative properties are studied. The comparison reveals that these two models differ significantly for intermediate strain rates, and a closing discussion highlights some issues about their foundations and numerical considerations.
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