Derives a formulation for spatial stress tensors and spatial material tensors of hyperelastic material. Looks at a class of materials with the strain energy function decomposed into a volumetric and a deviatoric part. Separate terms formulate the strain energy with respect to the invariants of the left Cauchy‐Green tensor. Stress and material tensors, which play a crucial role in the solution process of the finite element formulation, are derived solely in the current configuration. Applies the described framework to several different constitutive models based on phenomenologically and physically motivated material descriptions. Proposes a formulation for the finite element implementation of van der Waals material. Compares numerical results with experimental investigations given in the literature. For three‐dimensional finite element computations standard elements and mixed elements, based on a three‐field variational principle where displacements, the hydrostatic pressure and the dilatations are independent variables, are used.
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1 March 1997
Conceptual Paper|
March 01 1997
On the finite element implementation of rubber‐like materials at finite strains
M. Kaliske;
M. Kaliske
Institut für Statik, Universität Hannover, Hannover, Germany
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H. Rothert
H. Rothert
Institut für Statik, Universität Hannover, Hannover, Germany
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Publisher: Emerald Publishing
Online ISSN: 1758-7077
Print ISSN: 0264-4401
© MCB UP Limited
1997
Engineering Computations (1997) 14 (2): 216–232.
Citation
Kaliske M, Rothert H (1997), "On the finite element implementation of rubber‐like materials at finite strains". Engineering Computations, Vol. 14 No. 2 pp. 216–232, doi: https://doi.org/10.1108/02644409710166190
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