Thermal inertia effect of reactive sources on one-dimensional discrete combustion wave propagation
Daoguan Ning, Yuriy Shoshin

TL;DR
This study investigates how particle thermal inertia influences one-dimensional discrete combustion wave propagation, revealing its effects on flame speed, propagation limits, and the convergence of discrete and continuum models, thus identifying a new combustion regime.
Contribution
The paper introduces a modified discrete flame model incorporating particle thermal inertia, providing new insights into flame dynamics and limits, and demonstrating convergence with continuum models at high inertia.
Findings
Increased particle thermal inertia decreases flame speed.
Particle inertia extends propagation limits.
Discrete and continuum models converge at high inertia.
Abstract
In the present work, the discrete flame model [1] is augmented by introducing the thermal inertia of particles in the preheating zone. The effect of particle thermal inertia on flame speed, propagation limits, and near-limits dynamics of one-dimensional discrete combustion waves is studied using the new model. It is found that, with the increase of particle thermal inertia, the propagation velocity of the discrete flame decreases due to a smaller heating rate of the particles. Besides, particle thermal inertia extends the propagation limits compared to the prediction of the old model. Furthermore, it is mathematically proven that the nonphysical branch of the solutions for the discrete flame speeds, found using the old discrete model, is a set of solutions for the propagation limits of steady-state discrete flames with particle thermal inertia included. The flame speed predicted using…
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Taxonomy
TopicsCombustion and flame dynamics · Combustion and Detonation Processes · Radiative Heat Transfer Studies
