Scaling and interaction of self-similar modes in models of high Reynolds number wall turbulence

Abstract

Previous work has established the usefulness of the resolvent operator that maps the terms nonlinear in the turbulent fluctuations to the fluctuations themselves. Further work has described the self-similarity of the resolvent arising from that of the mean velocity profile. The orthogonal modes provided by the resolvent analysis describe the wall-normal coherence of the motions and inherit that self-similarity. In this contribution, we present the implications of this similarity for the nonlinear interaction between modes with different scales and wall-normal locations. By considering the nonlinear interactions between modes, it is shown that much of the turbulence scaling behaviour in the logarithmic region can be determined from a single arbitrarily chosen reference plane. Thus, the geometric scaling of the modes is impressed upon the nonlinear interaction between modes. Implications of these observations on the self-sustaining mechanisms of wall turbulence, modelling and simulation are outlined.

Document Details

Document Type
Pub Defense Publication
Publication Date
Mar 13, 2017
Source ID
10.1098/rsta.2016.0089

Entities

People

  • Ati Sharma
  • Beverley McKeon
  • R. Moarref

Organizations

  • Air Force Office of Scientific Research
  • California Institute of Technology
  • University of Southampton

Tags

Fields of Study

  • Physics

Readers

  • Fluid Dynamics.
  • Fluid Mechanics and Fluid Dynamics.
  • Wave Propagation and Nonlinear Chaotic Dynamics.