Tuning the Viscosity and Jamming Point in Dense Active non-Brownian Suspensions

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Autor principal: Bhowmik, Bhanu Prasad
Formato: Preprint
Publicado: 2025
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author Bhowmik, Bhanu Prasad
author_facet Bhowmik, Bhanu Prasad
contents Using numerical simulations, we study the rheological response of dense non-Brownian suspensions containing active particles. The active particles are modelled as run-and-tumble particles with three controlling parameters: the fraction of active particles in the system, an active force applied to the particles, and a persistence time after which the direction of the active force changes randomly. Our simulations reveal that the presence of activity can reduce the viscosity (by an order of magnitude) by decreasing the number of frictional contacts, which also shifts the jamming point to a higher volume fraction. Moreover, the microscopic structure of force chains in the presence of activity is qualitatively different from that in the passive system, showing reduced anisotropy. We also find that while the presence of activity drives the system away from jamming by preventing the formation of force chains, unjamming an already jammed state by breaking existing force chains requires a higher activity strength. Finally, we propose a new constitutive law to describe the rheology of dense active non-Brownian suspensions.
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id arxiv_https___arxiv_org_abs_2506_13316
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Tuning the Viscosity and Jamming Point in Dense Active non-Brownian Suspensions
Bhowmik, Bhanu Prasad
Soft Condensed Matter
Statistical Mechanics
Using numerical simulations, we study the rheological response of dense non-Brownian suspensions containing active particles. The active particles are modelled as run-and-tumble particles with three controlling parameters: the fraction of active particles in the system, an active force applied to the particles, and a persistence time after which the direction of the active force changes randomly. Our simulations reveal that the presence of activity can reduce the viscosity (by an order of magnitude) by decreasing the number of frictional contacts, which also shifts the jamming point to a higher volume fraction. Moreover, the microscopic structure of force chains in the presence of activity is qualitatively different from that in the passive system, showing reduced anisotropy. We also find that while the presence of activity drives the system away from jamming by preventing the formation of force chains, unjamming an already jammed state by breaking existing force chains requires a higher activity strength. Finally, we propose a new constitutive law to describe the rheology of dense active non-Brownian suspensions.
title Tuning the Viscosity and Jamming Point in Dense Active non-Brownian Suspensions
topic Soft Condensed Matter
Statistical Mechanics
url https://arxiv.org/abs/2506.13316