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August 17, 2025Journal of Fluid Mechanics0 citations

Direct numerical simulations of an axisymmetric turbulent boundary layer along a slender cylinder

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YXYikai XuWHWei‐Xi HuangCXChunxiao Xu

Key Points

  • Turbulent boundary layers along slender cylinders exhibit unique characteristics compared to planar layers.
  • Wall friction coefficient and mean velocity profile data show Reynolds numbers varying from 300 to 510.
  • Direct numerical simulations utilize suction and blowing to trigger flow transition from laminar to turbulent.
  • Quasi-streamwise vortices dominate the near-wall region, highlighting important flow structure changes.

Abstract

Axisymmetric turbulent boundary layers are of great significance in industry and the fluid dynamics community. In this paper, direct numerical simulations of an axially developing axisymmetric turbulent boundary layer along a slender cylinder are performed. Periodical suction and blowing perturbation are used to trigger the transition from laminar inflow to turbulent flow downstream, resulting in the boundary layer thickness varying from 7 to 13 times the cylinder radius, and the friction Reynolds number varying from 300 to 510. Turbulence statistics including wall friction coefficient, mean velocity profile and Reynolds stresses are obtained. The turbulence intensities are weakened compared with the planar turbulent layer, and the inter-component energy transfer is also inhibited. A curvature-weighted transformation is proposed, and the transformed Reynolds stresses and mean velocity deficit collapse well with the planar case in the near-wall region. The velocity streaks and vortical structures are explored. The wall-normal variation of the mean spanwise spacing of low-speed streaks is greatly influenced by the cylindrical geometry. Quasi-streamwise vortices dominate the near-wall region, and the arch vortices are prevalent in the outer region. The prograde hairpin vortices can be commonly observed.

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Cite This Study

Xu et al. (2025) studied this question.

synapsesocial.com/papers/68a36f8a0a429f7973332552https://doi.org/10.1017/jfm.2025.10463
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