Impact drag force exerting on a projectile penetrating into a hierarchical granular bed
F. Okubo, H. Katsuragi

TL;DR
This study develops a model for impact drag force on a projectile penetrating a hierarchical granular bed, revealing that grain fracturing significantly influences impact dynamics and differs from rigid granular targets.
Contribution
The paper introduces a new impact drag force model for hierarchical granular targets, incorporating effects of grain strength, porosity, and fracturing, based on systematic experiments.
Findings
Impact drag force is modeled as inertial plus depth-proportional components.
Depth-proportional drag is significantly larger in hierarchical granular targets.
Grain fracturing is crucial when impact pressure exceeds grain strength.
Abstract
Impact of a solid object onto a small-body surface can be modeled by the solid impact onto a hierarchically structured granular target. Impact drag force model for the hierarchically structured granular target is developed based on the experiment. We perform a set of granular impact experiments in which mechanical strength and porosity of target grains are systematically varied. Tiny glass beads (~m in diameter) are agglomerated to form porous grains of --~mm in diameter. Then, the grains are sintered to control their strength. A polyethylene sphere (~mm in diameter) is dropped onto a hierarchical granular target consisting of these porous grains. Motion of the penetrating sphere is captured by a high-speed camera and analyzed. We find that impact drag force produced by the hierarchically structured granular target can be modeled by the sum of inertial drag and…
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Taxonomy
TopicsHigh-Velocity Impact and Material Behavior · Fluid Dynamics Simulations and Interactions · Sports Dynamics and Biomechanics
