The Interaction of High-Speed Turbulence with Flames: Turbulent Flame Speed
Alexei Y. Poludnenko, Elaine S. Oran (Naval Research Lab)

TL;DR
This study uses direct numerical simulations to analyze how high-speed turbulence affects the turbulent flame speed in premixed flames, revealing the significant role of flame cusps and collisions in enhancing flame propagation.
Contribution
It provides new insights into the mechanisms, especially the impact of flame cusps and collisions, that influence turbulent flame speed in the thin reaction zone regime.
Findings
Turbulent flame speed exceeds surface area increase due to flame cusps.
High flame curvature regions, or cusps, significantly accelerate local flame speed.
Transition to cusp-influenced regime occurs at Karlovitz numbers above 20.
Abstract
(Abridged) Direct numerical simulations of the interaction of a premixed flame with driven, subsonic, homogeneous, isotropic, Kolmogorov-type turbulence in an unconfined system are used to study the mechanisms determining the turbulent flame speed, S_T, in the thin reaction zone regime. High intensity turbulence is considered with the r.m.s. velocity 35 times the laminar flame speed, S_L, resulting in the Damkohler number Da = 0.05. Here we show that: (1) The flame brush has a complex internal structure, in which the isosurfaces of higher fuel mass fractions are folded on progressively smaller scales. (2) Global properties of the turbulent flame are best represented by the structure of the region of peak reaction rate, which defines the flame surface. (3) In the thin reaction zone regime, S_T is predominantly determined by the increase of the flame surface area, A_T, caused by…
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