Enskog kinetic theory of rheology for a moderately dense inertial suspension

Satoshi Takada, Hisao Hayakawa, Andrés Santos, and Vicente Garzó
Phys. Rev. E 102, 022907 – Published 24 August 2020

Abstract

The Enskog kinetic theory for moderately dense inertial suspensions under simple shear flow is considered as a model to analyze the rheological properties of the system. The influence of the background fluid on suspended particles is modeled via a viscous drag force plus a Langevin-like term defined in terms of the background temperature. In a previous paper [Hayakawa et al., Phys. Rev. E 96, 042903 (2017)], Grad's moment method with the aid of a linear shear-rate expansion was employed to obtain a theory which gave good agreement with the results of event-driven Langevin simulations of hard spheres for low densities and/or small shear rates. Nevertheless, the previous approach had a limitation of not being applicable to the high-shear-rate and high-density regime. Thus, in the present paper, we extend the previous work and develop Grad's theory including higher-order terms in the shear rate. This improves significantly the theoretical predictions, a quantitative agreement between theory and simulation being found in the high-density region (volume fractions smaller than or equal to 0.4).

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  • Received 12 May 2020
  • Accepted 3 August 2020

DOI:https://doi.org/10.1103/PhysRevE.102.022907

©2020 American Physical Society

Physics Subject Headings (PhySH)

Polymers & Soft MatterInterdisciplinary PhysicsStatistical Physics & Thermodynamics

Authors & Affiliations

Satoshi Takada*

  • Institute of Engineering, Tokyo University of Agriculture and Technology, 2–24–16, Naka-cho, Koganei, Tokyo 184–8588, Japan

Hisao Hayakawa

  • Yukawa Institute for Theoretical Physics, Kyoto University, Kyoto 606–8502, Japan

Andrés Santos and Vicente Garzó§

  • Departamento de Física and Instituto de Computación Científica Avanzada (ICCAEX), Universidad de Extremadura, E–06006 Badajoz, Spain

  • *takada@go.tuat.ac.jp
  • hisao@yukawa.kyoto-u.ac.jp
  • andres@unex.es
  • §vicenteg@unex.es

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Vol. 102, Iss. 2 — August 2020

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