Coupled constitutive relations: a second law based higher-order closure for hydrodynamics

Author:

Rana Anirudh Singh12ORCID,Gupta Vinay Kumar23ORCID,Struchtrup Henning4

Affiliation:

1. Institute of Advanced Study, University of Warwick, Coventry CV4 7HS, UK

2. Mathematics Institute, University of Warwick, Coventry CV4 7AL, UK

3. Department of Mathematics, SRM Institute of Science and Technology, Chennai 603203, India

4. Department of Mechanical Engineering, University of Victoria, Victoria, British Columbia, Canada V8W 2Y2

Abstract

In the classical framework, the Navier–Stokes–Fourier equations are obtained through the linear uncoupled thermodynamic force-flux relations which guarantee the non-negativity of the entropy production. However, the conventional thermodynamic descrip- tion is only valid when the Knudsen number is sufficiently small. Here, it is shown that the range of validity of the Navier–Stokes–Fourier equations can be extended by incorporating the nonlinear coupling among the thermodynamic forces and fluxes. The resulting system of conservation laws closed with the coupled constitutive relations is able to describe many interesting rarefaction effects, such as Knudsen paradox, transpiration flows, thermal stress, heat flux without temperature gradients, etc., which cannot be predicted by the classical Navier–Stokes–Fourier equations. For this system of equations, a set of phenomenological boundary conditions, which respect the second law of thermodynamics, is also derived. Some of the benchmark problems in fluid mechanics are studied to show the applicability of the derived equations and boundary conditions.

Funder

EPSRC

European Union's Horizon 2020

Commonwealth Rutherford Fellowship

NSERC Discovery grant

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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