Simulations of a binary-sized mixture of inelastic grains in rapid shear flow

R. Clelland and C. M. Hrenya
Phys. Rev. E 65, 031301 – Published 8 February 2002
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Abstract

In an effort to explore the rapid flow behavior associated with a binary-sized mixture of grains and to assess the predictive ability of the existing theory for such systems, molecular-dynamic simulations have been carried out. The system under consideration is composed of inelastic, smooth, hard disks engaged in rapid shear flow. The simulations indicate that nondimensional stresses decrease with an increase in dL/dS (ratio of large particle diameter to small particle diameter) or a decrease in νL/νS (area fraction ratio), as is also predicted by the kinetic theory of Willits and Arnarson [Phys. Fluids 11, 3116 (1999)]. Furthermore, the level of quantitative agreement between the theoretical stress predictions and simulation data is good over the entire range of parameters investigated. Nonetheless, the molecular-dynamic simulations also show that the assumption of an equipartition of energy rapidly deteriorates as the coefficient of restitution is decreased. The magnitude of this energy difference is found to increase with the difference in particle sizes.

  • Received 27 July 2001

DOI:https://doi.org/10.1103/PhysRevE.65.031301

©2002 American Physical Society

Authors & Affiliations

R. Clelland and C. M. Hrenya*

  • Department of Chemical Engineering and Department of Mathematics, University of Colorado, Boulder, Colorado 80309

  • *Author to whom correspondence should be addressed. Email address: hrenya@colorado.edu

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Vol. 65, Iss. 3 — March 2002

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