From Sedimentation to Suspension: Critical Strain as a Predictor of Particle Resuspension Thresholds

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Main Authors: Mahmoudian, Mohammadreza, Rogers, Simon A., Mirbod, Parisa
Format: Preprint
Published: 2026
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author Mahmoudian, Mohammadreza
Rogers, Simon A.
Mirbod, Parisa
author_facet Mahmoudian, Mohammadreza
Rogers, Simon A.
Mirbod, Parisa
contents Viscous resuspension, the process by which sedimented particles are re-entrained into a fluid under flow, is central to numerous natural and industrial systems, including environmental contaminant transport, riverbed erosion, and biogeochemical cycling. Despite its ubiquity and importance, predicting when and how resuspension occurs remains challenging, particularly under oscillatory shear, where particle interactions are nonlinear, collective, and time-dependent. Here, we examine the resuspension dynamics of dense, non-Brownian suspensions under both steady and oscillatory shear using bulk rheometry and in situ rheo-microscopy over a broad range of particle volume fractions (ϕ= 0.30 to 0.55). We demonstrate that strain is the key control parameter governing the transition from a sedimented bed to a fully suspended state. This strain-driven onset is mediated by effective interparticle collisions and collective particle motion. We develop a predictive model that captures the observed strain thresholds as a function of volume fraction, allowing for the construction of a new state diagram delineating sedimentation, resuspension, and full suspension regimes. These findings reveal a robust, strain-controlled resuspension mechanism and establish a unified framework for predicting suspension behavior across steady and oscillatory flows, offering new tools for managing particle-laden transport in geophysical, biological, and industrial environments.
format Preprint
id arxiv_https___arxiv_org_abs_2604_11634
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle From Sedimentation to Suspension: Critical Strain as a Predictor of Particle Resuspension Thresholds
Mahmoudian, Mohammadreza
Rogers, Simon A.
Mirbod, Parisa
Fluid Dynamics
Soft Condensed Matter
Viscous resuspension, the process by which sedimented particles are re-entrained into a fluid under flow, is central to numerous natural and industrial systems, including environmental contaminant transport, riverbed erosion, and biogeochemical cycling. Despite its ubiquity and importance, predicting when and how resuspension occurs remains challenging, particularly under oscillatory shear, where particle interactions are nonlinear, collective, and time-dependent. Here, we examine the resuspension dynamics of dense, non-Brownian suspensions under both steady and oscillatory shear using bulk rheometry and in situ rheo-microscopy over a broad range of particle volume fractions (ϕ= 0.30 to 0.55). We demonstrate that strain is the key control parameter governing the transition from a sedimented bed to a fully suspended state. This strain-driven onset is mediated by effective interparticle collisions and collective particle motion. We develop a predictive model that captures the observed strain thresholds as a function of volume fraction, allowing for the construction of a new state diagram delineating sedimentation, resuspension, and full suspension regimes. These findings reveal a robust, strain-controlled resuspension mechanism and establish a unified framework for predicting suspension behavior across steady and oscillatory flows, offering new tools for managing particle-laden transport in geophysical, biological, and industrial environments.
title From Sedimentation to Suspension: Critical Strain as a Predictor of Particle Resuspension Thresholds
topic Fluid Dynamics
Soft Condensed Matter
url https://arxiv.org/abs/2604.11634