Entropy and Temperature of a Static Granular Assembly
arXiv:cond-mat/0701489 · doi:10.1103/PhysRevLett.99.038002
Abstract
Granular matter is comprised of a large number of particles whose collective behavior determines macroscopic properties such as flow and mechanical strength. A comprehensive theory of the properties of granular matter, therefore, requires a statistical framework. In molecular matter, equilibrium statistical mechanics, which is founded on the principle of conservation of energy, provides this framework. Grains, however, are small but macroscopic objects whose interactions are dissipative since energy can be lost through excitations of the internal degrees of freedom. In this work, we construct a statistical framework for static, mechanically stable packings of grains, which parallels that of equilibrium statistical mechanics but with conservation of energy replaced by the conservation of a function related to the mechanical stress tensor. Our analysis demonstrates the existence of a state function that has all the attributes of entropy. In particular, maximizing this state function leads to a well-defined granular temperature for these systems. Predictions of the ensemble are verified against simulated packings of frictionless, deformable disks. Our demonstration that a statistical ensemble can be constructed through the identification of conserved quantities other than energy is a new approach that is expected to open up avenues for statistical descriptions of other non-equilibrium systems.
5 pages, 4 figures
References in corpus (4)
Cited by in corpus (7)
- A deductive statistical mechanics approach for granular matter
- Critical scaling and heterogeneous superdiffusion across the jamming/rigidity transition of a granular glass
- Entropy maximization in the force network ensemble for granular solids
- Excitations of Ellipsoid Packings near Jamming
- Why Do Granular Materials Stiffen with Shear Rate? A Test of Novel Stress-Based Statistics
- Particle dynamics and effective temperature of jammed granular matter in a slowly sheared 3D Couette cell
- Nonequilibrium Fluctuation Relation for Sheared Micellar Gel in a Jammed State