Mathematical Modeling of the Hydrodynamic Instability and Chemical Inhibition of Detonation Waves in a Syngas–Air Mixture

Author:

Nikitin Valeriy12,Mikhalchenko Elena12,Stamov Lyuben12,Smirnov Nickolay12,Azatyan Vilen2

Affiliation:

1. Moscow Center for Fundamental and Applied Mathematics, Lomonosov Moscow State University, Leninskie Gory 1, Moscow 119992, Russia

2. National Research Centre Kurchatov Institute, Federal Science Center Scientific Research Institute for System Analysis of Russian Academy of Sciences, Moscow 117218, Russia

Abstract

This paper presents the results of the two-dimensional modeling of the hydrodynamic instability of a detonation wave, which results in the formation of an oscillating cellular structure on the wave front. This cellular structure of the wave, unstable due to its origin, demonstrates the constant statistically averaged characteristics of the cell size. The suppression of detonation propagation in synthesis gas mixtures with air using a combustible inhibitor is studied numerically. Contrary to the majority of inhibitors being either inert substances, which do not take part in the chemical reaction, or take part in chemical reaction but do not contribute to energy release, the suggested inhibitor is also a fuel, which enters into an exothermic reaction with oxygen. The unsaturated hydrocarbon propylene additive is used as an inhibitor. The dependence of the effect of the inhibitor content on the mitigation of detonation for various conditions of detonation initiation is researched. The results make it possible to determine a critical percentage of inhibitor which prevents the occurrence of detonation and the critical percentage of inhibitor which destroys a developed detonation wave.

Funder

Russian Science Foundation

National Research Centre “Kurchatov Institute” Federal Science Center “Scientific Research Institute for System Analysis of Russian Academy of Sciences”

Publisher

MDPI AG

Subject

General Mathematics,Engineering (miscellaneous),Computer Science (miscellaneous)

Reference38 articles.

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2. High Speed Turbulent Deflagrations and Transition to Detonation in H2-Air Mixtures;Lee;Combust. Flame,1984

3. Detonation cell size measurements and predictions in hydrogen-air-steam mixtures at elevated temperatures;Ciccarelli;Combust. Flame,1994

4. Three-dimensional cellular detonation in cylindrical channels;Levin;Pap. Acad. Sci.,2015

5. A Model for Detonation Cell Size Prediction from Chemical Kinetics;Gavrikov;Combust. Flame,2000

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