English

Universal Aging Dynamics and Scaling Laws in Three-Dimensional Driven Granular Gases

Statistical Mechanics 2025-12-30 v1

Abstract

We establish universal scaling laws and quantify aging in three-dimensional uniformly heated hard sphere granular gases through large-scale event-driven molecular dynamics (N=500,000N=500{,}000). We report three primary quantitative discoveries: (i) The characteristic energy decay time exhibits a universal inverse scaling τ0ϵ1.03±0.02\tau_0 \propto \epsilon^{-1.03 \pm 0.02} with the dissipation parameter ϵ=1e2\epsilon = 1 - e^2. (ii) The steady-state temperature follows a precise power-law Tsteadyϵ1.51±0.03T_{\mathrm{steady}} \propto \epsilon^{-1.51 \pm 0.03}, reflecting the non-linear balance between thermostat heating and collisional dissipation. (iii) The velocity autocorrelation function Aˉ(τw,τ)\bar{A}(\tau_w, \tau) demonstrates pronounced aging, with decay rates λ\lambda following a power-law slowing down λ(τw)τw0.82±0.05\lambda(\tau_w) \propto \tau_w^{-0.82 \pm 0.05}. These results establish the first 3D quantitative benchmarks for aging in driven dissipative gases, where near-Gaussian statistics persist despite extreme structural clustering.

Keywords

Cite

@article{arxiv.2512.23625,
  title  = {Universal Aging Dynamics and Scaling Laws in Three-Dimensional Driven Granular Gases},
  author = {Rameez Farooq Shah and Syed Rashid Ahmad},
  journal= {arXiv preprint arXiv:2512.23625},
  year   = {2025}
}