Numerical simulations of granular dynamics II. Particle dynamics in a shaken granular material
Naomi Murdoch, Patrick Michel, Derek C. Richardson, Kerstin Nordstrom,, Christian R. Berardi, Simon F. Green, Wolfgang Losert

TL;DR
This paper presents an adaptation of a parallel N-body code to simulate granular material dynamics, validating it against experiments and exploring effects of gravity and shaking relevant to planetary surfaces.
Contribution
The study introduces a new adaptation of the pkdgrav code capable of accurately modeling granular dynamics under various gravity conditions, extending simulation capabilities for planetary science.
Findings
Collective motion scale increases with small-particle concentration.
Simulations match experimental observations of granular behavior.
Collective motion occurs across a wide range of gravity conditions.
Abstract
Surfaces of planets and small bodies of our Solar System are often covered by a layer of granular material that can range from a fine regolith to a gravel-like structure of varying depths. Therefore, the dynamics of granular materials are involved in many events occurring during planetary and small-body evolution thus contributing to their geological properties. We demonstrate that the new adaptation of the parallel N-body hard-sphere code pkdgrav has the capability to model accurately the key features of the collective motion of bidisperse granular materials in a dense regime as a result of shaking. As a stringent test of the numerical code we investigate the complex collective ordering and motion of granular material by direct comparison with laboratory experiments. We demonstrate that, as experimentally observed, the scale of the collective motion increases with increasing…
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