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Phys. Rev. E 78, 046701 (2008) [14 pages]

Simulation of two- and three-dimensional dense-fluid shear flows via nonequilibrium molecular dynamics: Comparison of time-and-space-averaged stresses from homogeneous Doll’s and Sllod shear algorithms with those from boundary-driven shear

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Wm. G. Hoover and Carol G. Hoover
Ruby Valley Research Institute, Highway Contract 60, Box 598, Ruby Valley 89833, Nevada USA

Janka Petravic
Complex Systems in Biology Group, Centre for Vascular Research, The University of New South Wales, Sydney NSW 2052, Australia

Received 10 May 2008; published 2 October 2008

Homogeneous shear flows (with constant strainrate dvxdy) are generated with the Doll’s and Sllod algorithms and compared to corresponding inhomogeneous boundary-driven flows. We use one-, two-, and three-dimensional smooth-particle weight functions for computing instantaneous spatial averages. The nonlinear normal-stress differences are small, but significant, in both two and three space dimensions. In homogeneous systems the sign and magnitude of the shearplane stress difference, PxxPyy, depend on both the thermostat type and the chosen shearflow algorithm. The Doll’s and Sllod algorithms predict opposite signs for this normal-stress difference, with the Sllod approach definitely wrong, but somewhat closer to the (boundary-driven) truth. Neither of the homogeneous shear algorithms predicts the correct ordering of the kinetic temperatures: Txx>Tzz>Tyy.

© 2008 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevE.78.046701
DOI:
10.1103/PhysRevE.78.046701
PACS:
02.70.Ns, 45.10.−b, 46.15.−x, 47.11.Mn