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April 12, 2026Journal of Fluid Mechanics1 citationsOpen Access

Dynamics of oblate particle migration and orientation in duct flows of elastoviscoplastic fluids

SHShahriar HabibiKIKazi Tassawar IqbalPCPedro Costa

Key Points

  • The study aims to explore how spheroidal particles behave in elastoviscoplastic fluids under various flow conditions.
  • Interface-resolved direct numerical simulations used to model flow behavior
  • Investigation of particle migration and orientation in duct flows
  • Analysis of finite-size spheroidal particles with varying aspect ratios and rheological properties
  • Particles in Saramito fluids migrate towards the duct center and align diagonally under inertia
  • At high elasticity, particles penetrate the central plug irrespective of shape or position
  • Lower elasticity results in unsteady tumbling and spinning due to plug interactions
  • In Saramito-Giesekus fluids, particles are driven to corners, aligning perpendicularly to duct diagonals
  • Flattened particles stay farther from walls, while spherical particles cluster at corners.

Abstract

Elastoviscoplastic (EVP) fluids, characterised by the coexistence of elastic, viscous and yield-stress properties, play a central role in diverse applications, including drug delivery, 3D printing and hydraulic fracturing. These fluids often transport non-spherical particles whose migration dynamics strongly influences flow behaviour. In this work, we employ interface-resolved direct numerical simulations to investigate the migration and orientation dynamics of finite-size spheroidal particles suspended in EVP duct flows across a wide range of governing parameters. Our results show that the equilibrium position and orientation of the particles are influenced significantly by both their aspect ratio and the carrier fluid rheology. In Saramito fluids, spheroidal particles migrate towards the duct centre and align along the duct diagonals in the presence of inertia. At sufficiently high elasticity, they penetrate the central plug and reach the duct core, irrespective of their initial position or shape. At lower elasticities, where larger plug regions persist, interactions with the plug alter the angular dynamics of the particles, leading to unsteady, quasi-periodic tumbling and spinning motions. In contrast, in Saramito–Giesekus fluids, the interplay between inertial forces, shear-thinning plastic viscosity and yield stress drives particles towards the duct corners, aligning them perpendicular to the duct diagonals. In semi-dilute suspensions, flattened particles maintain a greater distance from the walls, whereas their spherical counterparts tend to cluster directly at the corners. These findings reveal complex migration and orientation behaviours unique to EVP media and suggest new opportunities for geometry-based particle separation in microfluidic applications.

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Cite This Study

Habibi et al. (2026) studied this question.

synapsesocial.com/papers/69db36e64fe01fead37c4deahttps://doi.org/10.1017/jfm.2026.11381
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