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Parameterization of the nonlocal viscosity kernel for an atomic fluid

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posted on 2024-07-26, 14:37 authored by J. S. Hansen, Peter J. Daivis, Karl P. Travis, Billy ToddBilly Todd
In this paper we present results for the wave-vector dependent shear viscosity for a model atomic fluid with short ranged repulsive interactions computed by molecular dynamics simulations. It is shown that the data can be fitted to two different simple functional forms over a large density range, namely, a function composed of two Gaussian terms and a Lorentzian type function with a variable wave-vector exponent. The parameters of both functional forms are found to obey simple density dependencies. While the first functional form has the advantage that the inverse Fourier transform can be found analytically, the Lorentzian type function fits the wave-vector dependence better over the range of wave vectors and densities studied here. The results show that the real space viscosity kernel has a width of 2 to 3 atomic diameters. This means that the generalized hydrodynamic constitutive relation is required if the strain rate varies significantly over this distance, a situation commonly encountered for nanofluidic flows.

Funding

Australian Research Council

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PDF (Published version)

ISSN

1539-3755

Journal title

Physical Review E - Statistical, Nonlinear, and Soft Matter Physics

Volume

76

Issue

4

Article number

article no. 041121

Pagination

041121-

Publisher

American Physical Society

Copyright statement

Copyright © 2007 The American Physical Society. The published version is reproduced with the permission of the publisher.

Language

eng

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