Local flame displacement speeds of hydrogen-air premixed flames in moderate to intense turbulence
Yuvraj, Wonsik Song, Himanshu Dave, Hong G. Im, Swetaprovo Chaudhuri

TL;DR
This study investigates how high turbulence levels affect the local flame displacement speed in hydrogen-air flames, demonstrating that local isotherm interactions dominate speed enhancement in intense turbulence, validating an existing interaction model.
Contribution
It extends the flame-flame interaction model to high Karlovitz number turbulence conditions, showing local isotherm interactions govern displacement speed in intense turbulence.
Findings
Enhanced $ ilde{S}_d$ driven by local isotherm interactions in high turbulence.
Interaction model remains valid for high $Ka$ turbulent flames.
Large negative curvature regions significantly influence $ ilde{S}_d$.
Abstract
Comprehensive knowledge of local flame displacement speed, , in turbulent premixed flames is crucial towards the design and development of hydrogen fuelled next-generation engines. Premixed hydrogen-air flames are characterized by significantly higher laminar flame speed compared to other conventional fuels. Furthermore, in the presence of turbulence, is enhanced much beyond its corresponding unstretched, planar laminar value . In this study, the effect of high Karlovitz number () turbulence on density-weighted flame displacement speed, , in a H-air flame is investigated. Recently, it has been identified that flame-flame interactions in regions of large negative curvature govern large deviations of from , for moderately turbulent flames. An interaction model for the same has also been proposed. In this work, we seek to test…
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