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May 13, 2026Journal of Fluid Mechanics0 citationsOpen Access

Flow separation without a wall: laminar shear-wake–cylinder interactions

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BABorhan AlhosseinihamedaniJPJimmy PhilipJKJoseph Klewicki

Key Points

  • This research aims to understand how laminar shear-wake interacts with cylinders to form a variety of vortex states.
  • Utilized hydrogen-bubble flow visualisations in a water channel to study shear-wake interactions.
  • Analyzed vorticity-transport equations to assess vortex system dynamics.
  • Examined the effects of non-dimensional parameters like Reynolds number and shear ratio.
  • Identified stable and unstable vortex formations dependent on Reynolds number and shear ratio.
  • Vortex generation increased with high Reynolds numbers, leading to more complex vortex states.
  • Flow separation was observed upstream of the cylinder, altering the typical shear-wake behavior.

Abstract

This study investigates necklace-vortex systems forming when a laminar shear-wake, generated by two streams merging at the trailing edge of a splitter plate, interacts with a circular cylinder placed downstream in the wake. Hydrogen-bubble flow visualisations were employed in a water channel capable of producing laminar shear-wake flows. In the absence of the cylinder, oppositely signed vorticity in the shear-wake undergoes mutual annihilation. The introduction of the cylinder interrupts this evolution, promoting off-wall flow separation upstream of the cylinder and vortex roll-up. The study primarily focuses on two non-dimensional parameters, the Reynolds number Reₘ and the shear ratio SR, and presents a mapping of the observed vortex regimes. Increasing Reₘ promotes either the formation of additional vortices or unsteadiness. Increasing SR generally suppresses vortex formation or attenuates unsteadiness, except near SR 0 at low to moderate Reₘ, where the two-vortex system is unstable to additional vortex generation. Observed configurations range from no-vortex states to one- or two-vortex systems at low Reynolds numbers, and to three-, four- and five-vortex systems at larger Reynolds numbers, with unsteadiness becoming prominent beyond the three-vortex regime and predominant in four- and five-vortex systems. Beyond regime mapping, we delve into the structure of a steady two- and three-vortex system at low to moderate Reₘ. This provides insights into the emergence and evolution of the vortex system, which is analysed in the context of the vorticity-transport equations.

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Cite This Study

Alhosseinihamedani et al. (2026) studied this question.

synapsesocial.com/papers/6a03cbe01c527af8f1ecfac2https://doi.org/10.1017/jfm.2026.11538
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