Investigation of Turbulent Mixing and Local Reaction Rates on Deflagration to Detonation Transition in Methane-Oxygen
Brian Maxwell, Andrzej Pekalski, Matei Radulescu

TL;DR
This study uses advanced large eddy simulation to explore how turbulent mixing and local reactions influence the transition from deflagration to detonation in methane-oxygen, validating findings with experimental data.
Contribution
It introduces a grid-within-a-grid LES approach to analyze DDT, highlighting the roles of turbulence and shock interactions in flame acceleration and detonation initiation.
Findings
Turbulent fluctuations above laminar flame speed are necessary for DDT.
Local explosion events and shock interactions drive wave acceleration.
The combustion process mainly occurs within the thin-reaction zones regime.
Abstract
In the current study, the influence of turbulent mixing and local reaction rates on deflagration to detonation transition (DDT) was investigated using a state-of-the-art large eddy simulation (LES) strategy. Specifically, detonation attenuation by a porous medium, and the subsequent re-initiation for methane-oxygen, a moderately unstable mixture, was considered. The purpose of the investigation was to validate the numerical strategy with previous experimental observations, and to determine what specific roles turbulent mixing and shock compression have on flame acceleration during the final stages of DDT. The modelling procedure adopted was a grid-within-a-grid approach: The compressible linear eddy model for large eddy simulation (CLEM-LES). It was found that average turbulent fluctuations greater than the laminar flame speed were required in order to maintain wave velocities above the…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
Taxonomy
TopicsCombustion and Detonation Processes · Fire dynamics and safety research · Combustion and flame dynamics
