Published December 1, 2016 | Version v1
Journal article

Subcritical transition scenarios via linear and nonlinear localized optimal perturbations in plane Poiseuille flow

  • 1. DMMM, Politecnico di Bari, Via Re David 200, 70125 Bari (Italy)
  • 2. DynFluid Laboratory, Arts et Metiers ParisTech, 151 Boulevard de l'Hopital, 75013 Paris (France)

Description

Subcritical transition in plane Poiseuille flow is investigated by means of a Lagrange-multiplier direct-adjoint optimization procedure with the aim of finding localized three-dimensional perturbations optimally growing in a given time interval (target time). Space localization of these optimal perturbations (OPs) is achieved by choosing as objective function either a p-norm (with p 1) of the perturbation energy density in a linear framework; or the classical (1-norm) perturbation energy, including nonlinear effects. This work aims at analyzing the structure of linear and nonlinear localized OPs for Poiseuille flow, and comparing their transition thresholds and scenarios. The nonlinear optimization approach provides three types of solutions: a weakly nonlinear, a hairpin-like and a highly nonlinear optimal perturbation, depending on the value of the initial energy and the target time. The former shows localization only in the wall-normal direction, whereas the latter appears much more localized and breaks the spanwise symmetry found at lower target times. Both solutions show spanwise inclined vortices and large values of the streamwise component of velocity already at the initial time. On the other hand, p-norm optimal perturbations, although being strongly localized in space, keep a shape similar to linear 1-norm optimal perturbations, showing streamwise-aligned vortices characterized by low values of the streamwise velocity component. When used for initializing direct numerical simulations, in most of the cases nonlinear OPs provide the most efficient route to transition in terms of time to transition and initial energy, even when they are less localized in space than the p-norm OP. The p-norm OP follows a transition path similar to the oblique transition scenario, with slightly oscillating streaks which saturate and eventually experience secondary instability. On the other hand, the nonlinear OP rapidly forms large-amplitude bent streaks and skips the phases of streak saturation, providing a contemporary growth of all of the velocity components due to strong nonlinear coupling. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/0169-5983/48/6/061409

Additional details

Publishing Information

Journal Title
Fluid Dynamics Research (Online)
Journal Volume
48
Journal Issue
6
Journal Page Range
[27 p.]
ISSN
1873-7005

INIS

Country of Publication
Netherlands
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
51028076
Subject category
S42: ENGINEERING;
Descriptors DEI
AMPLITUDES; COMPUTERIZED SIMULATION; DISTURBANCES; ENERGY DENSITY; INSTABILITY; LAMINAR FLOW; MATHEMATICAL SOLUTIONS; NATURALLY OCCURRING RADIOACTIVE MATERIALS; NONLINEAR PROBLEMS; OPTIMIZATION; SATURATION; VELOCITY; VORTICES
Descriptors DEC
FLUID FLOW; MATERIALS; RADIOACTIVE MATERIALS; SIMULATION