Granular jamming and rheology in microgravity

Fuente: arXiv
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Main Authors: D'Angelo, Olfa, Yu, Qing, Pöschel, Thorsten
Format: Preprint
Published: 2025
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author D'Angelo, Olfa
Yu, Qing
Pöschel, Thorsten
author_facet D'Angelo, Olfa
Yu, Qing
Pöschel, Thorsten
contents Understanding how granular materials behave in low gravity is crucial for planetary science and space exploration. It can also help us understand granular phenomena usually hidden by gravity. On Earth, gravity dominates granular behavior, but disentangling its role from intrinsic particle interactions is challenging. We present a series of compression and shear experiments conducted in microgravity using the Center of Applied Space Technology and Microgravity (ZARM) drop tower and GraviTower Bremen (GTB). Our in-house developed experimental setup enables precise measurement of packing density and in-situ shear stress via a Taylor-Couette rheometer. We find that the jamming transition occurs at lower packing density in microgravity than on Earth, confirming that gravity promotes densification. Rheological measurements further reveal that in microgravity, the lack of a secondary force field and predominance of cohesive interparticle forces increase the stress needed for granular media to flow. These findings highlight gravity's dual role in enhancing both compaction and flow, and demonstrate the need for tailored granular models, valid in low- and microgravity environments.
format Preprint
id arxiv_https___arxiv_org_abs_2507_08674
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Granular jamming and rheology in microgravity
D'Angelo, Olfa
Yu, Qing
Pöschel, Thorsten
Soft Condensed Matter
Space Physics
Understanding how granular materials behave in low gravity is crucial for planetary science and space exploration. It can also help us understand granular phenomena usually hidden by gravity. On Earth, gravity dominates granular behavior, but disentangling its role from intrinsic particle interactions is challenging. We present a series of compression and shear experiments conducted in microgravity using the Center of Applied Space Technology and Microgravity (ZARM) drop tower and GraviTower Bremen (GTB). Our in-house developed experimental setup enables precise measurement of packing density and in-situ shear stress via a Taylor-Couette rheometer. We find that the jamming transition occurs at lower packing density in microgravity than on Earth, confirming that gravity promotes densification. Rheological measurements further reveal that in microgravity, the lack of a secondary force field and predominance of cohesive interparticle forces increase the stress needed for granular media to flow. These findings highlight gravity's dual role in enhancing both compaction and flow, and demonstrate the need for tailored granular models, valid in low- and microgravity environments.
title Granular jamming and rheology in microgravity
topic Soft Condensed Matter
Space Physics
url https://arxiv.org/abs/2507.08674