Free-surface deformation and air entrainment in turbulent flow past a rotating cylinder beneath a water–air interface
Journal article, 2026

The flow past a fully submerged rotating cylinder beneath a free surface involves complex multiphase interactions, including free-surface deformation, air entrainment, and wave breaking. Using large-eddy simulation coupled with the volume-of-fluid method, we investigate these phenomena at Re = 6 × 10⁴ and spin ratio α = 2 over a range of submergence depths H/D = 3–100, Froude numbers Fr = 2.0–3.2, and both clockwise and anticlockwise rotations. The free surface exhibits markedly different responses depending on the rotation direction: clockwise rotation produces a deep wave trough accompanied by intense air entrainment, whereas anticlockwise rotation generates a wave crest with substantially less entrainment. The two-phase mixing region volume is quantified and found to exhibit local extrema, reflecting the shifting balance between gravity- and inertia-dominated regimes for the parameter set investigated. The lift coefficient exhibits a significant reduction that is strongly correlated with the occurrence of intense air entrainment, with an optimal submergence of H/D = 5 providing maximum lift under moderate Froude numbers. The streamwise velocity field reveals how air entrainment alters the wake structure and promotes energy dissipation. These findings provide a fundamental quantitative understanding of multiphase Magnus-effect flows.

Volume of fluid

Rotating cylinder

Air entrainment

Free surface

Magnus effect

Wave breaking

Author

Lin Jianfeng

Chalmers, Mechanics and Maritime Sciences (M2), Fluid Dynamics

Zenghui Zhu

Xuxiang Cao

Lin Cai

Shizhao Wang

Huadong Yao

Chalmers, Mechanics and Maritime Sciences (M2), Marine Technology

International Journal of Multiphase Flow

0301-9322 (ISSN)

Vol. 203 105874

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Swedish Transport Administration (TRV2024/98491), 2026-01-01 -- 2028-12-31.

Subject Categories (SSIF 2025)

Fluid Mechanics

Applied Mechanics

DOI

10.1016/j.ijmultiphaseflow.2026.105874

More information

Created

8/3/2026 7