A thermodynamic framework to develop rate-type models for fluids without instantaneous elasticity

arXiv:1007.376414 citationsh-index: 91
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This work provides a theoretical foundation for modeling viscoelastic fluids without instantaneous elasticity, which is relevant for materials science and continuum mechanics.

The authors apply a thermodynamic framework to develop rate-type models for viscoelastic fluids without instantaneous elasticity, demonstrating fluid-like behavior and the ability to recover Maxwell-like and Kelvin-Voigt-like models as special cases.

In this paper, we apply the thermodynamic framework recently put into place by Rajagopal and co-workers, to develop rate-type models for viscoelastic fluids which do not possess instantaneous elasticity. To illustrate the capabilities of such models we make a specific choice for the specific Helmholtz potential and the rate of dissipation and consider the creep and stress relaxation response associated with the model. Given specific forms for the Helmholtz potential and the rate of dissipation, the rate of dissipation is maximized with the constraint that the difference between the stress power and the rate of change of Helmholtz potential is equal to the rate of dissipation and any other constraint that may be applicable such as incompressibility. We show that the model that is developed exhibits fluid-like characteristics and is incapable of instantaneous elastic response. It also includes Maxwell-like and Kelvin-Voigt-like viscoelastic materials (when certain material moduli take special values).

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