Navier-Stokes hydrodynamics of thermal collapse in a freely cooling granular gas
arXiv:0912.0661 · doi:10.1103/PhysRevE.82.021302
Abstract
We employ Navier-Stokes granular hydrodynamics to investigate the long-time behavior of clustering instability in a freely cooling dilute granular gas in two dimensions. We find that, in circular containers, the homogeneous cooling state (HCS) of the gas loses its stability via a sub-critical pitchfork bifurcation. There are no time-independent solutions for the gas density in the supercritical region, and we present analytical and numerical evidence that the gas develops thermal collapse unarrested by heat diffusion. To get more insight, we switch to a simpler geometry of a narrow-sector-shaped container. Here the HCS loses its stability via a transcritical bifurcation. For some initial conditions a time-independent inhomogeneous density profile sets in, qualitatively similar to that previously found in a narrow-channel geometry. For other initial conditions, however, the dilute gas develops thermal collapse unarrested by heat diffusion. We determine the dynamic scalings of the flow close to collapse analytically and verify them in hydrodynamic simulations. The results of this work imply that, in dimension higher than one, Navier-Stokes hydrodynamics of a dilute granular gas is prone to finite-time density blowups. This provides a natural explanation to the formation of densely packed clusters of particles in a variety of initially dilute granular flows.
18 pages, 19 figures
References in corpus (9)
- Dynamics of Freely Cooling Granular Gases
- Shear-induced crystallization of a dense rapid granular flow: hydrodynamics beyond the melting point?
- Hydrodynamics of fluid-solid coexistence in dense shear granular flow
- Thermal collapse of a granular gas under gravity
- Formation of density singularities in ideal hydrodynamics of freely cooling inelastic gases: a family of exact solutions
- Formation and evolution of density singularities in hydrodynamics of inelastic gases
- Shear state of freely evolving granular gases
- Attempted density blowup in a freely cooling dilute granular gas: hydrodynamics versus molecular dynamics
- A nonlinear theory of non-stationary low Mach number channel flows of freely cooling nearly elastic granular gases
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