AbstractExperimental and numerical studies have shown similarities between localized turbulence in channel and pipe flows. By scaling analysis of a disturbed-flow model, this paper proposes a local Reynolds number ReM to characterize the threshold of transition triggered by finite-amplitude disturbances. The ReM represents the maximum contribution of the basic flow to the momentum ratio between the nonlinear convection and the viscous diffusion. The lower critical ReM observed in experiments of plane Poiseuille flow, pipe Poiseuille flow and plane Couette flow are all close to 323, indicating the uniformity of mechanism governing the transition to localized turbulence
Although flow in a circular pipe is stable to infinitesimal perturbations, it can be excited to turb...
Turbulent-laminar patterns are ubiquitous near transition in wall-bounded shear flows. Despite recen...
In pipes, turbulence sets in despite the linear stability of the laminar Hagen–Poiseuille flow. The ...
AbstractExperimental and numerical studies have shown similarities between localized turbulence in c...
International audienceThe onset of shear flow turbulence is characterized by turbulent patches bound...
Recent experimental and numerical investigations reveal that the onset of turbulence in plane-Poiseu...
The statistics of the relaminarisation of localised turbulence in a pipe are examined by direct nume...
In this paper, the physics of flow instability and turbulent transition in shear flows is studied by...
The volatile transition from quiescent laminar to strongly fluctuating turbulent dynamics in shear f...
In many shear flows like pipe flow, plane Couette flow, plane Poiseuille flow, etc. turbulence emer...
In plane Couette flow, the incompressible fluid between two plane parallel walls is driven by the mo...
International audienceTurbulent-laminar intermittency, typically in the form of bands and spots, is ...
International audienceSubcritical transition to turbulence requires finite-amplitude perturbations. ...
Unsteady spatially localized states such as puffs, slugs or spots play an important role in transiti...
AbstractThe study of the transition to turbulence in parallel shear flows without linear instability...
Although flow in a circular pipe is stable to infinitesimal perturbations, it can be excited to turb...
Turbulent-laminar patterns are ubiquitous near transition in wall-bounded shear flows. Despite recen...
In pipes, turbulence sets in despite the linear stability of the laminar Hagen–Poiseuille flow. The ...
AbstractExperimental and numerical studies have shown similarities between localized turbulence in c...
International audienceThe onset of shear flow turbulence is characterized by turbulent patches bound...
Recent experimental and numerical investigations reveal that the onset of turbulence in plane-Poiseu...
The statistics of the relaminarisation of localised turbulence in a pipe are examined by direct nume...
In this paper, the physics of flow instability and turbulent transition in shear flows is studied by...
The volatile transition from quiescent laminar to strongly fluctuating turbulent dynamics in shear f...
In many shear flows like pipe flow, plane Couette flow, plane Poiseuille flow, etc. turbulence emer...
In plane Couette flow, the incompressible fluid between two plane parallel walls is driven by the mo...
International audienceTurbulent-laminar intermittency, typically in the form of bands and spots, is ...
International audienceSubcritical transition to turbulence requires finite-amplitude perturbations. ...
Unsteady spatially localized states such as puffs, slugs or spots play an important role in transiti...
AbstractThe study of the transition to turbulence in parallel shear flows without linear instability...
Although flow in a circular pipe is stable to infinitesimal perturbations, it can be excited to turb...
Turbulent-laminar patterns are ubiquitous near transition in wall-bounded shear flows. Despite recen...
In pipes, turbulence sets in despite the linear stability of the laminar Hagen–Poiseuille flow. The ...