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Ordinary and inverse Magnus effects on rotating spheres: laminar separation bubble, secondary vortex and wing-tip-like vortices

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Abstract

This paper provides direct experimental evidence for the coexistence of both a laminar separation bubble and a secondary vortex on the advancing side of a rotating sphere when subjected to the inverse Magnus effect. Detailed experiments were conducted in a wind tunnel on two spheres of varying surface roughness to investigate both ordinary and inverse Magnus effects. Experiments took place for and rotation rates, where the spheres were rotated via a shaft that was oriented perpendicularly to the free stream flow. Static pressure measurements were made on the non-shaft hemisphere using a spline of taps spanning from the equator to the pole. The ordinary Magnus effect was generally observed at the lowest tested, with a transition to the inverse Magnus effect occurring as increased. Time-averaged pressure coefficient distributions across the equatorial plane were obtained for the smooth and rough spheres. Cross-flow particle image velocimetry was used to visualise the downstream wake velocity field. A pair of counter-rotating wing-tip-like vortices were detected when the sphere experienced the ordinary Magnus effect, generated by flow leakage from the advancing to the retreating side. When the sphere experienced the inverse Magnus effect, the polarity of the counter-rotating vortex pair reversed. This is the first experimental observation of the vortex polarity reversal associated with the inverse Magnus effect in the wake of a rotating sphere. The results provide qualitative visualisation of the complex fluid dynamics and inform future applications of the Magnus effect.

Original languageEnglish
Article numberA48
Pages (from-to)A48-1-A8-31
JournalJournal of Fluid Mechanics
Volume1019
DOIs
Publication statusPublished - 22 Sept 2025

Acknowledgements

The authors would like to thank C. Bricker for her help in setting up the PIV experiments.

Funding

This research received no specific grant from any funding agency, commercial or not-for-profit sectors.

Keywords

  • boundary layer separation
  • turbulent boundary layers
  • vortex dynamics

ASJC Scopus subject areas

  • Condensed Matter Physics
  • Mechanics of Materials
  • Mechanical Engineering
  • Applied Mathematics

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