On the role of transverse detonation waves in the re-establishment of attenuated detonations in methane-oxygen
Grace Floring, Mohnish Peswani, Brian Maxwell

TL;DR
This study uses high-resolution simulations with a four-step combustion model to investigate how transverse detonation waves contribute to re-establishing detonations in methane-oxygen mixtures after attenuation, highlighting the importance of pressure amplification and instabilities.
Contribution
The paper demonstrates that a four-step combustion model can accurately capture transverse detonations and elucidates their role in re-initiating detonations, which previous simpler models failed to do.
Findings
Transverse detonations are initiated through pressure amplification at reaction zones.
Hot spots and instabilities like Richtmyer-Meshkov influence detonation re-initiation.
Transverse detonations are Chapman-Jouguet detonations contributing to overdriving.
Abstract
The problem of detonation attenuation in stoichiometric methane-oxygen and its re-establishment following its interaction with obstacles was investigated using high resolution numerical simulation. The main focus was on the role of the transverse detonation on the re-establishment of the detonation wave. We applied an efficient thermochemically derived four-step global combustion model using an Euler simulation framework to investigate the critical regimes present. While past attempts at using one- or two- step models have failed to capture transverse detonations, for this scenario, our simulations have demonstrated that the four-step combustion model is able to capture this feature. We suggest that to correctly model detonation re-initiation in characteristically unstable mixtures, an applied combustion model should contain at least an adequate description to permit the correct…
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Taxonomy
TopicsCombustion and Detonation Processes · Gas Dynamics and Kinetic Theory · Earthquake Detection and Analysis
