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April 1, 2026Journal of Fluid Mechanics0 citations

Lift force models for a spherical particle immersed in linear and quadratic shear flows

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TWTongkuai WangZhejiang UniversityZLZhaowu LinZhejiang UniversityXKXiaoke Ku

Key Points

  • Investigate the influence of curvature in velocity profiles on lift forces for spherical particles across different shear flows.
  • Conduct direct numerical simulations (DNS) for spherical particles in various shear flows
  • Extend existing linear shear-slip-induced lift models to higher shear rates
  • Modify existing models to include effects of parabolic velocity profiles in Poiseuille flow
  • Establish an updated model for particle rotation rates under Poiseuille flow conditions.
  • Lift models modified for higher shear rates show significant changes in lift prediction
  • Curvature of velocity profiles enhances lift for leading particles and reduces for lagging particles in Poiseuille flow
  • Inverse Magnus force observed at low slip Reynolds numbers due to lift attenuation for lagging particles.

Abstract

The lift force models for a particle in wall-bounded linear shear flow have been extensively investigated; however, the influence of the curvature of the velocity profile (Sg) on the lift force at finite slip Reynolds numbers (Re) remains unexplored. In the present work, direct numerical simulations (DNS) are performed to investigate the lift on a spherical particle in unbounded linear shear flow, single-wall-bounded linear shear flow and Poiseuille flow. Based on our DNS data, we first extend the existing unbounded and single-wall-bounded linear shear-slip-induced lift models to higher non-dimensional shear rates (|Sr|=2. 5) for 0. 1 Re 20. Based on the empirical model for Couette flow or the analytical model for unbounded Poiseuille flow, the lift models are then modified to account for the curvature effect of the parabolic velocity profile, which reduce to the linear shear-slip-induced lift models in the high Re and low Sg limits. We also modify the rotation-induced lift model of linear shear flow to account for the parabolic shear effect, which causes lift enhancement for the leading particle and lift attenuation for the lagging particle in the Poiseuille flow, compared to the linear shear case. This lift attenuation may give rise to an inverse Magnus force at low slip Reynolds numbers. In addition, the model for the particle free rotation rate for the Poiseuille flow is established by correcting the one for the linear shear flow, providing a more accurate prediction of the torque on the particle.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69cd7e935652765b073a9900https://doi.org/10.1017/jfm.2026.11397
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