Skip to main navigation Skip to search Skip to main content

Ozone-affected auto-ignitive hydrogen-air flames: Transitions near critical temperatures

Research output: Contribution to journalArticlepeer-review

Abstract

This study investigates the effects of ozone addition on autoignition-assisted hydrogen-air flames with detailed kinetics and transport. For homogeneous ignition, a critical temperature (Tc[jls-end-space/]) was identified that significantly influences the reaction pathways and ignition characteristics. It is shown that below Tc[jls-end-space/], the system exhibits a distinct two-stage reaction process during autoignition, characterized by initial ozone decomposition followed by high-temperature hydrogen-oxygen reactions. Above Tc[jls-end-space/], the two ignition stages merge, leading to drastically reduced ignition delay time—a small temperature difference near Tc can result in a hundredfold reduction. For the auto-ignitive flames, similar transition in terms of flame speeds occurs near the critical temperature, for which the proposed scaling law based on Damköhler number holds for both conditions below and above Tc[jls-end-space/]. Comparative analysis of zero-dimensional (0D) and one-dimensional (1D) simulations reveals pronounced differences in the evolution of key species such as H2, H, HO2 and O3. In 1D flames, transport processes lead to more efficient radical buildup and earlier ozone consumption compared to the 0D case. The spatial coupling of the H2 diffusion zones with O3 consumption zones above Tc was found to enhance the overall combustion process. The effects of elevated pressure have also been illustrated. These findings underscore the critical influence of transport effects and subtle temperature variations on radical accumulation, reaction pathways, and flame dynamics in ozone-assisted hydrogen combustion.

Original languageEnglish (US)
Article number114870
JournalCombustion and Flame
Volume287
DOIs
StatePublished - May 2026

All Science Journal Classification (ASJC) codes

  • General Chemistry
  • General Chemical Engineering
  • Fuel Technology
  • Energy Engineering and Power Technology
  • General Physics and Astronomy

Keywords

  • Autoignitive flame
  • Flame speed
  • Ozone addition

Fingerprint

Dive into the research topics of 'Ozone-affected auto-ignitive hydrogen-air flames: Transitions near critical temperatures'. Together they form a unique fingerprint.

Cite this