Scale-Locality: Insights into the energy cascade across scales in a shock

ORAL

Abstract

Inter-scale energy transfer (or the cascade) is of relevance to both LES modeling and turbulence theory. In incompressible homogeneous isotropic turbulence, there has been compelling theoretical and empirical support that the scale-transfer of kinetic energy (KE) is local. Here, we analyze the locality of KE scale-transfer in compressible turbulence. There is a common notion that shocks and discontinuities that pervade compressible turbulence necessarily imply a non-local scale-transfer. We show this not to be the case by demonstrating rigorous proofs of scale-locality using two examples: (i) solution to the Burgers equation and (ii) the 1D normal shock solution. Proofs of scale-locality in compressible turbulence hold in broad generality, at any Mach number, for any equation of state, and without the requirement of homogeneity or isotropy. Rather, locality rests on assumptions about the scaling of velocity, pressure, and density structure functions, which are weak and enjoy broad empirical support.

*This research was supported by US DOE grant DE-SC0020229 and NSF grant PHY-2206380. Partial support from US NSF grants PHY-2020249 is acknowledged.

Presenters

  • Dina Soltani Tehrani

    • Mechanical Engineering Department, University of Rochester, Rochester, NY 14625, USA

Authors

  • Dina Soltani Tehrani

    • Mechanical Engineering Department, University of Rochester, Rochester, NY 14625, USA
  • Hussein Aluie

    • Mechanical Engineering Department, University of Rochester, Rochester, NY 14625, USA
    • Dept. of Mechanical Engg, University of Rochester
    • Department of Mechanical Engineering, University of Rochester, Rochester, New York, USA
    • Department of Mechanical Engineering, University of Rochester
    • University of Rochester