Properties of reaction fronts in a non-adiabatic two stage exothermic-endothermic competitive reaction scheme

Authors

  • Wilson Wee UNSW Canberra
  • Harvinder Sidhu UNSW Canberra
  • Jason Sharples UNSW Canberra
  • Isaac Towers UNSW Canberra
  • Vladimir Gubernov P.N. Lebedev Physical Institute, Russian Academy of Sciences

DOI:

https://doi.org/10.21914/anziamj.v54i0.6302

Keywords:

non-adiabatic, flame speed, combustion waves, competitive exothermic-endothemic

Abstract

We numerically derive the properties of reaction fronts arising in a pre-mixed one dimensional two staged non-adiabatic competitive exothermic-endothermic reaction scheme where both reaction pathways compete for the same fuel. We utilise FlexPDE and the method of lines to obtain numerical solutions for properties such as the front speed and stability over a range of parameter values such as the Lewis number and the ratios of enthalpies and activation energies. Steady and pulsating speeds are demonstrated for specific regions of the parameter space. We also show that in some circumstances there exists a chaotic regime of combustion wave propagation. References
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Author Biographies

Wilson Wee, UNSW Canberra

Student

Harvinder Sidhu, UNSW Canberra

Associate Professor, Discipline Coordinator - Mathematics & Statistics

Jason Sharples, UNSW Canberra

Senior Lecturer - Mathematics

Isaac Towers, UNSW Canberra

Senior Lecturer - Mathematics

Vladimir Gubernov, P.N. Lebedev Physical Institute, Russian Academy of Sciences

Senior Researcher - I.E. Tamm Theory Department

Published

2013-10-10

Issue

Section

Proceedings Computational Techniques and Applications Conference