Shock Propagation in Granular Flow Subjected to an External Impact
arXiv:1202.0413 · doi:10.1103/PhysRevE.85.061301
Abstract
We analyze a recent experiment [Phys. Rev. Lett., {\bf103}, 224501 (2009)] in which the shock, created by the impact of a steel ball on a flowing monolayer of glass beads, is quantitatively studied. We argue that radial momentum is conserved in the process, and hence show that in two dimensions the shock radius increases in time as a power law . This is confirmed in event driven simulations of an inelastic hard sphere system. The experimental data are compared with the theoretical prediction, and is shown to compare well at intermediate times. At late times, the experimental data exhibit a crossover to a different scaling behavior. We attribute this to the problem becoming effectively three dimensional due to accumulation of particles at the shock front, and propose a simple hard sphere model which incorporates this effect. Simulations of this model capture the crossover seen in the experimental data.
8 pages, 8 figures
References in corpus (5)
- Dynamics of Freely Cooling Granular Gases
- Experimental investigation of the freely cooling granular gas
- Violation of Porod law in a freely cooling granular gas in one dimension
- On the equivalence of the freely cooling granular gas to the sticky gas
- Lattice models for ballistic aggregation in one-dimension