4.5 Article

The Onsager theory of wall-bounded turbulence and Taylor's momentum anomaly

Publisher

ROYAL SOC
DOI: 10.1098/rsta.2021.0079

Keywords

wall turbulence; channel flow; Onsager theory of turbulence; weak solutions; renormalization group; large-eddy simulation

Funding

  1. Simons Foundation [MPS-663054]
  2. NSF [CBET 1738918]

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This article discusses the Onsager theory of wall-bounded turbulence, analyzing the momentum dissipation anomaly hypothesized by Taylor. By performing a coarse-graining operation, the article derives an upper bound on wall friction and establishes a deterministic relationship between the turbulent drag law and the profile of the mean streamwise velocity.
We discuss the Onsager theory of wall-bounded turbulence, analysing the momentum dissipation anomaly hypothesized by Taylor. Turbulent drag laws observed with both smooth and rough walls imply ultraviolet divergences of velocity gradients. These are eliminated by a coarse-graining operation, filtering out small-scale eddies and windowing out near-wall eddies, thus introducing two arbitrary regularization length-scales. The regularized equations for resolved eddies correspond to the weak formulation of the Navier-Stokes equation and contain, in addition to the usual turbulent stress, also an inertial drag force modelling momentum exchange with unresolved near-wall eddies. Using an Onsager-type argument based on the principle of renormalization group invariance, we derive an upper bound on wall friction by a function of Reynolds number determined by the modulus of continuity of the velocity at the wall. Our main result is a deterministic version of Prandtl's relation between the Blasius -1/4 drag law and the 1/7 power-law profile of the mean streamwise velocity. At higher Reynolds, the von Karman-Prandtl drag law requires instead a slow logarithmic approach of velocity to zero at the wall. We discuss briefly also the large-eddy simulation of wall-bounded flows and use of iterative renormalization group methods to establish universal statistics in the inertial sublayer. This article is part of the theme issue 'Scaling the turbulence edifice (part 1)'.

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