Air jet impact craters on granular surfaces: a universal scaling

Fuente: arXiv
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Main Authors: Sonar, Prasad, Katsuragi, Hiroaki
Format: Preprint
Published: 2024
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author Sonar, Prasad
Katsuragi, Hiroaki
author_facet Sonar, Prasad
Katsuragi, Hiroaki
contents Craters form as the lander's exhaust interacts with the planetary surfaces. Understanding this phenomenon is imperative to ensure safe landings. We investigate crater morphology, where a turbulent air jet impinges on the granular surfaces. To reveal the fundamental aspect of this phenomenon, systematic experiments are performed with various air jet velocities, nozzle positions, and grain properties. The resultant crater morphology is characterized by an aspect ratio. We find a universal scaling law in which the aspect ratio is scaled by the dimensionless variable consisting of air velocity at the nozzle, speed of sound in air, nozzle diameter, nozzle tip distance from the surface, grain diameter, the density of grains, and density of air. The obtained scaling reveals the crossover of the length scales governing crater aspect ratio, providing a useful guideline for ensuring safe landings. Moreover, we report a novel drop shaped subsurface cratering phenomenon.
format Preprint
id arxiv_https___arxiv_org_abs_2409_04988
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Air jet impact craters on granular surfaces: a universal scaling
Sonar, Prasad
Katsuragi, Hiroaki
Fluid Dynamics
Soft Condensed Matter
Craters form as the lander's exhaust interacts with the planetary surfaces. Understanding this phenomenon is imperative to ensure safe landings. We investigate crater morphology, where a turbulent air jet impinges on the granular surfaces. To reveal the fundamental aspect of this phenomenon, systematic experiments are performed with various air jet velocities, nozzle positions, and grain properties. The resultant crater morphology is characterized by an aspect ratio. We find a universal scaling law in which the aspect ratio is scaled by the dimensionless variable consisting of air velocity at the nozzle, speed of sound in air, nozzle diameter, nozzle tip distance from the surface, grain diameter, the density of grains, and density of air. The obtained scaling reveals the crossover of the length scales governing crater aspect ratio, providing a useful guideline for ensuring safe landings. Moreover, we report a novel drop shaped subsurface cratering phenomenon.
title Air jet impact craters on granular surfaces: a universal scaling
topic Fluid Dynamics
Soft Condensed Matter
url https://arxiv.org/abs/2409.04988