Inelastic collapse and clumping in a one-dimensional granular medium
- 1 March 1992
- journal article
- research article
- Published by AIP Publishing in Physics of Fluids A: Fluid Dynamics
- Vol. 4 (3), 496-504
- https://doi.org/10.1063/1.858323
Abstract
The dynamics of a one‐dimensional gas of inelastic point particles is investigated. To model inelastic collisions, it is supposed that the relative velocity of two colliding particles is reduced by a factor r, where 0<rr is the coefficient of restitution. Because the collisions are inelastic, particles can collide infinitely often in finite time so that the relative separations and velocities of adjacent particles on the line become zero. The minimal example of this ‘‘inelastic collapse’’ requires rr is greater than 7−4 7/8, more than three particles are needed to trigger inelastic collapse and it is shown that r is close to 1 the minimum number scales as −ln(1−r)/(1−r). The simplest statistical problem is the ‘‘cooling law’’ of a uniformly excited gas confined between inelastic boundaries. A scaling argument suggests that the mean square velocity (the ‘‘granular temperature’’) of the particles decreases like t−2. Numerical simulations show that this scaling is correct only if the total number of particles in the domain is less than the number required to trigger collapse (e.g., roughly 88 if r=0.95). When the number of particles is much greater than this minimum, and before the first collapse, clusters form throughout the medium. Thus a state with uniform particle density is unstable to the formation of aggregates and inelastic collapse is the finite‐amplitude expression of this instability.Keywords
This publication has 10 references indexed in Scilit:
- Inelastic microstructure in rapid granular flows of smooth disksPhysics of Fluids A: Fluid Dynamics, 1991
- One-dimensional bounce of inelastically colliding marbles on a wallJournal of Physics A: General Physics, 1990
- Statistics of ballistic agglomerationPhysical Review Letters, 1990
- Structural features in granular flowsJournal of Geophysical Research, 1990
- A Steady-State Model of Wind-Blown Sand TransportThe Journal of Geology, 1990
- Rapid Granular FlowsAnnual Review of Fluid Mechanics, 1990
- Subharmonic Instabilities and Defects in a Granular Layer under Vertical VibrationsEurophysics Letters, 1989
- Computer simulation of the mechanical sorting of grainsPowder Technology, 1986
- Computer simulation of granular shear flowsJournal of Fluid Mechanics, 1985
- Grain flow as a fluid-mechanical phenomenonJournal of Fluid Mechanics, 1983