Turbulent diffusion of chemically reacting gaseous admixtures

T. Elperin, N. Kleeorin, M. Liberman, and I. Rogachevskii
Phys. Rev. E 90, 053001 – Published 3 November 2014

Abstract

We study turbulent diffusion of chemically reacting gaseous admixtures in a developed turbulence. In our previous study [Phys. Rev. Lett. 80, 69 (1998)] using a path-integral approach for a delta-correlated in a time random velocity field, we demonstrated a strong modification of turbulent transport in fluid flows with chemical reactions or phase transitions. In the present study we use the spectral τ approximation that is valid for large Reynolds and Peclet numbers and show that turbulent diffusion of the reacting species can be strongly depleted by a large factor that is the ratio of turbulent and chemical times (turbulent Damköhler number). We have demonstrated that the derived theoretical dependence of a turbulent diffusion coefficient versus the turbulent Damköhler number is in good agreement with that obtained previously in the numerical modeling of a reactive front propagating in a turbulent flow and described by the Kolmogorov-Petrovskii-Piskunov-Fisher equation. We have found that turbulent cross-effects, e.g., turbulent mutual diffusion of gaseous admixtures and turbulent Dufour effect of the chemically reacting gaseous admixtures, are less sensitive to the values of stoichiometric coefficients. The mechanisms of the turbulent cross-effects differ from the molecular cross-effects known in irreversible thermodynamics. In a fully developed turbulence and at large Peclet numbers the turbulent cross-effects are much larger than the molecular ones. The obtained results are applicable also to heterogeneous phase transitions.

  • Figure
  • Received 23 May 2014
  • Revised 8 September 2014

DOI:https://doi.org/10.1103/PhysRevE.90.053001

©2014 American Physical Society

Authors & Affiliations

T. Elperin1,*, N. Kleeorin1,†, M. Liberman2,3,‡, and I. Rogachevskii1,§

  • 1The Pearlstone Center for Aeronautical Engineering Studies, Department of Mechanical Engineering, Ben-Gurion University of the Negev, P. O. Box 653, Beer-Sheva 84105, Israel
  • 2Nordita, KTH Royal Institute of Technology and Stockholm University, Roslagstullsbacken 23, 10691 Stockholm, Sweden
  • 3Moscow Institute of Physics and Technology, Dolgoprudnyi, 141700, Russia

  • *elperin@bgu.ac.il; http://www.bgu.ac.il/me/staff/tov
  • nat@bgu.ac.il
  • misha.liberman@gmail.com; http://michael-liberman.com/
  • §gary@bgu.ac.il; http://www.bgu.ac.il/∼gary

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Issue

Vol. 90, Iss. 5 — November 2014

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