The effects of incident electric fields on counterflow diffusion flames.

ORAL

Abstract

The impingement of electric fields on flames is known to have potential for mitigating combustion instabilities, enhancing flame propagation and decreasing pollutant emissions. A computational analysis of counterflow methane-oxygen laminar diffusion flames impinged by electric fields is performed in this work using axisymmetric numerical simulations, complex transport and a detailed chemistry mechanism. The electric field steers the charged intermediate species, which exchange momentum with the rest of the gas, thereby changing the flow around the flame and creating an ionic wind whereby anions and cations flow towards the corresponding electrodes. As a result, the aerothermal field and scalar dissipation rate undergo variations that may be of significance for the subgrid-scale modeling of turbulent flames subject to electric fields. The results are found to agree well with previous experiments.

*This research has been supported by Grant No. PON03PE\_00067\_6 APULIA SPACE. This work was performed during the visit of the first author to the Center for Turbulence Research of the Stanford University during Fall 2016 and Winter 2017.

Authors

  • Mario Di Renzo

    • Univ Politecnico di Bari
  • Pietro De Palma

    • Univ Politecnico di Bari
  • Marco Donato de Tullio

    • Univ Politecnico di Bari
  • Giuseppe Pascazio

    • Univ Politecnico di Bari
  • Javier Urzay

    • Stanford Univ
    • Stanford University
    • Center for Turbulence Research, Stanford University