FLUE GAS ANALYSIS FOR BIOMASS AND COAL CO-FIRING IN FLUIDIZED BED: PROCESS SIMULATION AND VALIDATION
Loading...
Date
Authors
Zhakupov, Daulet
Kulmukanova, Lyazzat
Sarbassov, Yerbol
Shah, Dhawal
Journal Title
Journal ISSN
Volume Title
Publisher
International Journal of Coal Science & Technology
Abstract
Coal-conversion technologies, although used ubiquitously, are often discredited due to high pollutant emissions, thereby
emphasizing a dire need to optimize the combustion process. The co-fring of coal/biomass in a fuidized bed reactor has been
an efcient way to optimize the pollutants emission. Herein, a new model has been designed in Aspen Plus® to simultaneously include detailed reaction kinetics, volatile compositions, tar combustion, and hydrodynamics of the reactor. Validation
of the process model was done with variations in the fuel including high-sulfur Spanish lignite, high-ash Ekibastuz coal, wood
pellets, and locally collected municipal solid waste (MSW) and the temperature ranging from 1073 to 1223 K. The composition of the exhaust gases, namely, CO/CO2/NO/SO2 were determined from the model to be within 2% of the experimental
observations. Co-combustion of local MSW with Ekibastuz coal had fue gas composition ranging from 1000 to 5000 ppm
of CO, 16.2%–17.2% of CO2, 200–550 ppm of NO, and 130–210 ppm of SO2. A sensitivity analysis on co-fring of local
biomass and Ekibastuz coal demonstrated the optimal operating temperature for fuidized bed reactor at 1148 K with the
recommended biomass-to-coal ratio is 1/4, leading to minimum emissions of CO, NO, and SO2
Description
Citation
Zhakupov, D., Kulmukanova, L., Sarbassov, Y., & Shah, D. (2022). Flue gas analysis for biomass and coal co-firing in fluidized bed: process simulation and validation. International Journal of Coal Science &Amp; Technology, 9(1). https://doi.org/10.1007/s40789-022-00531-y
Collections
Endorsement
Review
Supplemented By
Referenced By
Creative Commons license
Except where otherwised noted, this item's license is described as Attribution-NonCommercial-ShareAlike 3.0 United States
