English

Granular surface flows confined between flat, frictional walls. Part 1. Kinematics

Fluid Dynamics 2022-05-04 v2 Other Condensed Matter

Abstract

We report and analyse the results of extensive discrete element method simulations of three-dimensional gravity driven flows of cohesionless granular media over an erodible bed, the whole being confined between two flat and frictional sidewalls. We focus on the role of sidewalls by performing simulations for different gap widths (WW) between the two confining sidewalls: from 55 to 3030 grain sizes (dd). Our results indicate the existence of two distinct regimes: regime I for flow angles smaller than the critical angle θc40\theta_c\approx 40^\circ and regime II at flow angles larger than θc\theta_c . Regime I corresponds to dense flows whereas flows belonging to regime II exhibit a strong variation of the volume fraction through the depth. Three relevant lengths are identified in the system: WW the gap between sidewalls, ll the length characterizing the vertical variation of the volume fraction and hh a characteristic length associated with the vertical variation of the streamwise velocity. Using these lengths we can rescale the profiles of various flow properties (e.g. streamwise velocity, granular temperature, particle rotation...). In regime II, in contrast to regime I, ll and hh have a similar behaviour. As a consequence, the rescaled profiles in regime II only involve hh (or equivalently ll) and WW . Other dissimilarities exist between regimes I and II. In particular, the scaling of the flow rate with hh (at fixed WW ) differs in the two regimes, although they display a similar scaling with WW (at fixed flow angle).

Keywords

Cite

@article{arxiv.2205.00888,
  title  = {Granular surface flows confined between flat, frictional walls. Part 1. Kinematics},
  author = {Patrick Richard and Alexandre Valance and Renaud Delannay and Philippe Boltenhagen},
  journal= {arXiv preprint arXiv:2205.00888},
  year   = {2022}
}