Direct simulation of transition in Stokes boundary layers
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Publication:4426409
DOI10.1063/1.868940zbMath1039.76510OpenAlexW1996012346MaRDI QIDQ4426409
Roberto Verzicco, Giovanna Vittori
Publication date: 1996
Published in: Physics of Fluids (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1063/1.868940
Boundary-layer theory, separation and reattachment, higher-order effects (76D10) Transition to turbulence (76F06)
Related Items (14)
The linear stability of a Stokes layer subjected to high-frequency perturbations ⋮ Intermittent turbulence in a pulsating pipe flow ⋮ Direct numerical simulation of the oscillatory flow around a sphere resting on a rough bottom ⋮ Heat transfer in the seabed boundary layer ⋮ On the stability of the boundary layer at the bottom of propagating surface waves ⋮ Mean flow structure and velocity–bed shear stress maxima phase difference in smooth wall, transitionally turbulent oscillatory boundary layers: direct numerical simulations ⋮ Self-similar decay and mixing of a high-Schmidt-number passive scalar in an oscillating boundary layer in the intermittently turbulent regime ⋮ Direct numerical simulations of small disturbances in the classical Stokes layer ⋮ Instability and transition induced by wall roughness in a finite Stokes layer ⋮ A LATTICE BOLTZMANN STUDY OF THE 2D BOUNDARY LAYER CREATED BY AN OSCILLATING PLATE ⋮ Revisiting the momentary stability analysis of the Stokes boundary layer ⋮ The linear stability of oscillating pipe flow ⋮ Transition to turbulence at the bottom of a solitary wave ⋮ The laminar seabed thermal boundary layer forced by propagating and standing free-surface waves
Cites Work
- Sand ripples under sea waves Part 1. Ripple formation
- Sand ripples under sea waves Part 3. Brick-pattern ripple formation
- The nonlinear evolution of high-frequency resonant-triad waves in an oscillatory Stokes layer at high Reynolds number
- The linear stability of flat Stokes layers
- Wall imperfections as a triggering mechanism for Stokes-layer transition
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