Role of particle diameter in laminar combustion regimes for hybrid mixtures of coal dust and methane gas
2019
Abstract Burning velocity in hybrid mixtures depends on coupling interaction between the gas flame, particle heating, and particle combustion. The objective of this work is to use computational fluid dynamics to investigate the role of particle diameter on hybrid mixture burning velocity and to develop laminar combustion regime diagrams at different particle diameters. Analysis of the particle heating, devolatilization, and surface reaction timescales demonstrates that combustion is limited by particle heating with the model parameters used. Furthermore, comparison to the premixed gas flame residence timescale (flame thickness divided by burning velocity) shows that a maximum diameter exists above which particle combustion cannot contribute to enhancing hybrid flame propagation. Combustion regime diagrams constructed for 10 particles demonstrate coupling between the gas flame and dust combustion throughout the entire concentration range investigated. Combustion regime diagrams constructed for 33 particles illustrate that burning velocity enhancement terminates above initial gas equivalence ratios of 0.68 using the current model.
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