Collisional Model for Granular Impact Dynamics
arXiv:1310.3134 · doi:10.1103/PhysRevE.89.012201
Abstract
When an intruder strikes a granular material from above, the grains exert a stopping force which decelerates and stops the intruder. Many previous studies have used a macroscopic force law, including a drag force which is quadratic in velocity, to characterize the decelerating force on the intruder. However, the microscopic origins of the force law terms are still a subject of debate. Here, drawing from previous experiments with photoelastic particles, we present a model which describes the velocity-squared force in terms of repeated collisions with clusters of grains. From our high speed photoelastic data, we infer that `clusters' correspond to segments of the strong force network that are excited by the advancing intruder. The model predicts a scaling relation for the velocity-squared drag force that accounts for the intruder shape. Additionally, we show that the collisional model predicts an instability to rotations, which depends on the intruder shape. To test this model, we perform a comprehensive experimental study of the dynamics of two-dimensional granular impacts on beds of photoelastic disks, with different profiles for the leading edge of the intruder. We particularly focus on a simple and useful case for testing shape effects by using triangular-nosed intruders. We show that the collisional model effectively captures the dynamics of intruder deceleration and rotation; i.e., these two dynamical effects can be described as two different manifestations of the same grain-scale physical processes.
14 pages, 13 figures
References in corpus (9)
- Unified force law for granular impact cratering
- Scaling and dynamics of sphere and disk impact into granular media
- Particle Scale Dynamics in Granular Impact
- Depth-dependent resistance of granular media to vertical penetration
- Granular impact and the critical packing state
- Penetration depth for shallow impact cratering
- Projectile interactions in granular impact cratering
- Granular Impact Model as an Energy-Depth Relation
- Projectile-shape dependence of impact craters in loose granular media
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- Power law scaling of early-stage forces during granular impact
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- Shape dependence of resistance force exerted on an obstacle placed in a gravity-driven granular silo flow
- Impact-induced energy transfer and dissipation in granular clusters under microgravity conditions
- Effect of two parallel intruders on net work during granular penetrations
- `Sinking' in a bed of grains activated by shearing
- Viscous-like forces control the impact response of shear-thickening dense suspensions
- Stagnant Zone Formation in a 2D Bed of Circular and Elongated Grains under Penetration
- A novel experimental setup for an oblique impact onto an inclined granular layer
- Dynamics of oblique impact in a photoelastic granular medium
- Force on a sphere suspended in flowing granulate
- Granular Impact: A Grain-scale Approach
- Fluctuations of particle motion in granular avalanches - from the microscopic to the macroscopic scales