4.7 Article

Static and dynamic properties of smoothed dissipative particle dynamics

Journal

JOURNAL OF COMPUTATIONAL PHYSICS
Volume 356, Issue -, Pages 303-318

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcp.2017.12.009

Keywords

Mesoscopic hydrodynamic simulation; Fluid compressibility; Fluid viscosity; Freezing artifacts; Flows in complex geometries; Schmidt number

Funding

  1. Alexander von Humboldt Foundation
  2. Julich Supercomputing Center

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In this paper, static and dynamic properties of the smoothed dissipative particle dynamics (SDPD) method are investigated. We study the effect of method parameters on SDPD fluid properties, such as structure, speed of sound, and transport coefficients, and show that a proper choice of parameters leads to a well-behaved and accurate fluid model. In particular, the speed of sound, the radial distribution function (RDF), shear-thinning of viscosity, the mean-squared displacement (< R-2 > alpha t), and the Schmidt number (Sc similar to O(10(3)) - O(10(4))) can be controlled, such that the model exhibits a fluid-like behavior for a wide range of temperatures in simulations. Furthermore, in addition to the consideration of fluid density variations for fluid compressibility, a more challenging test of incompressibility is performed by considering the Poisson ratio and divergence of velocity field in an elongational flow. Finally, as an example of complex-fluid flow, we present the applicability and validity of the SDPD method with an appropriate choice of parameters for the simulation of cellular blood flow in irregular geometries. In conclusion, the results demonstrate that the SDPD method is able to approximate well a nearly incompressible fluid behavior, which includes hydrodynamic interactions and consistent thermal fluctuations, thereby providing, a powerful approach for simulations of complex mesoscopic systems. (c) 2017 Elsevier Inc. All rights reserved.

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