Two types of quaking and shear unjamming: state diagram for soft granular particles under shear
Cheng-En Tsai, Wei-Chih Li, H.-C. Fan-Chiang, Pai-Yi Hsiao, and, Jih-Chiang (JC) Tsai

TL;DR
This paper introduces a state diagram for soft granular particles under shear, revealing two types of quaking intermittency driven by tribology and shear rate, challenging the traditional view of shear always promoting jamming.
Contribution
It develops a Stribeck-Hertz model incorporating tribology to explain intermittency and identifies two distinct quaking behaviors with different microstructural pathways.
Findings
Tribology enables quaking intermittency in granular flows.
Two types of quaking are distinguished by contact changes.
Shear can unjam granular systems depending on shear rate.
Abstract
Understanding intermittency, an ubiquitous behavior in flows of packed grains, is pivotal for establishing the rheology of granular matter. A straightforward explanation has been missing despite the long development of theories at various levels of abstraction. Here, we propose the use of a Stribeck-Hertz model that starts with the classic Coulomb friction but takes into account the inter-particle tribology, i.e. the reduction of friction coefficient with sliding speed as is commonly observed. Our numerical experiments reveal a state diagram that covers a wide range of packing fractions and show that incorporating the tribology enables the occurrence of quaking intermittency in the mid-range of a newly established dimensionless shear rate, in consistence with prior experimental observations. Further study of the discontinuities in the evolution of mean contact number leads to our…
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Taxonomy
TopicsGranular flow and fluidized beds · Material Dynamics and Properties · Sports Dynamics and Biomechanics
