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May 7, 2026International Journal of Chemical Kinetics0 citationsOpen Access

Effect of HBr on Explosion Limits of Stoichiometric Hydrogen‐oxygen Mixture

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CYChunkan YuPGPeter Glarborg

Key Points

  • This research aims to evaluate how HBr affects explosion limits in hydrogen-oxygen mixtures through numerical simulations.
  • Numerical simulations were conducted using the INSFLA code to model mass, momentum, and energy.
  • Wall surface reactions were included to account for the interactions of chemically reactive radicals.
  • Sensitivity analyses were performed to evaluate the influence of chemical reaction rates on explosion limits.
  • HBr was found to effectively inhibit all three explosion limits under the tested conditions.
  • The chain-propagating step HBr++ was identified as a key factor in the inhibition mechanism.
  • Each explosion limit is influenced by different primary chemical reactions.

Abstract

ABSTRACT This work, based on numerical simulations, discusses the effect of HBr as an inhibitor on the explosion limit of stoichiometric hydrogen‐oxygen gas mixture in a closed spherical vessel. The numerical simulation solves the complete governing equations for mass, momentum, species and energy. In addition, wall surface reactions are included to describe the destruction of chemically reactive radicals. The in‐house INSFLA code is used, which takes into account the differential diffusion and thermal diffusion (Soret effect) to describe the mass transport of species within the system. The inhibitory effect of HBr on all three explosion limits under the considered conditions is analyzed based on sensitivity analysis of the explosion limit with respect to chemical reaction rates and reaction pathway analysis. It is found that the main reason for the inhibition effect is the chain‐propagating step HBr++ which is in effect terminating. However, each of the three explosion limits is governed by different key reactions.

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Cite This Study

Yu et al. (2026) studied this question.

synapsesocial.com/papers/69fc2c1f8b49bacb8b347c8ehttps://doi.org/10.1002/kin.70076
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