4.6 Article

Flame characterisation of gas-assisted pulverised coal combustion using FPV-LES

Journal

PROCEEDINGS OF THE COMBUSTION INSTITUTE
Volume 39, Issue 3, Pages 3249-3258

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.proci.2022.07.080

Keywords

LES; FPV; Pulverised coal combustion; Volatile flame; Gas assisted pilot

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A multiphase flamelet/progress variable (FPV) model is developed for the large eddy simulation (LES) of gas-assisted pulverised coal combustion (PCC). The model is validated against experimental evidence and shows good agreement in terms of predicted mean and RMS velocities, as well as mean gas temperature. The contributions of different fuel streams to the coal flame are analyzed, revealing dominance of pilot or volatile combustion in different regions of the furnace.
A multiphase flamelet/progress variable (FPV) model for the large eddy simulation (LES) of gas-assisted pulverised coal combustion (PCC) is developed. The target of the simulation is the Darmstadt turbulent gasassisted swirling solid fuel combustion chamber. The coal particles are treated as Lagrangian point particles, the position, momentum and energy of which are tracked. The gas phase is described by the low-Mach Navier-Stokes equations alongside the Eulerian transport equations of the governing variables for the FPV model. The set of chemical states of the PCC flame is pre-tabulated in a six-dimensional flamelet table and determined by the mixing of the primary fuel stream, volatiles and char off-gases with the oxidising air, the progress of chemical reactions, the interphase heat transfer, as well as sub-grid scale variations. A presumed & beta;PDF approach for the total mixture fraction is applied to capture sub-grid scale effects. The discrete ordinate method (DOM) with the weighted sum of grey gases model (WSGGM) is employed to model radiation. The FPV-LES results are validated against the experimental evidence and a good agreement of the predicted mean and RMS velocities, as well as the mean gas temperature between experiments and simulations is obtained. The contributions of the pilot, volatile and char off-gas fuel streams to the coal flame are analysed. It is found that most regions of the furnace are dominated by either pilot or volatile combustion, while char conversion only occurs in the far downstream and outer furnace regions. The pilot gas dominates the nearwall region inside the quarl, whereas the volatile gas mainly released from small particles dominates a first volatile combustion zone in the interior of the internal recirculation zone. Larger particles heat up more slowly and release their volatile content further downstream, leading to a secondary volatile combustion zone.& COPY; 2022 The Combustion Institute. Published by Elsevier Inc. All rights reserved.

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