TY - JOUR
T1 - Development of slurry bubble column with lithium silicate to recover hot CO2 gas from flue gas
AU - Kanai, Yugo
AU - Terasaka, Koichi
AU - Suwabe, Masato
AU - Fujioka, Satoko
AU - Kobayashi, Daisuke
PY - 2012/1/1
Y1 - 2012/1/1
N2 - To reduce the release of greenhouse gas from massive emission sources into atmosphere, a slurry bubble column suspending lithium silicate is proposed to remove hot CO2 from flue gas or pre-combustion effluent gas. As the liquid phase, the molten salt consisting of binary carbonates was used. The slurry suspending solid particles of lithium silicate in the molten salt promoted to mix gas and slurry in the column so that the absorption rate of CO2 was improved. In this study, the effects of some important operating conditions such as superflcial flue gas velocity, the concentration of lithium silicate powder in the slurry and the height of the slurry on CO2 absorption were investigated to optimize the system. The CO2 absorption increased with increasing superflcial gas velocity and decreasing slurry concentration. Fractional CO2 recovery increased with increasing the height of the slurry. The apparent rate constant and the apparent activation energy were determined in the reaction system. Moreover, an endurance test was conducted to confirm stable recovery capacity, in which the proposed CO2 recovering system performance was repeatedly maintained.
AB - To reduce the release of greenhouse gas from massive emission sources into atmosphere, a slurry bubble column suspending lithium silicate is proposed to remove hot CO2 from flue gas or pre-combustion effluent gas. As the liquid phase, the molten salt consisting of binary carbonates was used. The slurry suspending solid particles of lithium silicate in the molten salt promoted to mix gas and slurry in the column so that the absorption rate of CO2 was improved. In this study, the effects of some important operating conditions such as superflcial flue gas velocity, the concentration of lithium silicate powder in the slurry and the height of the slurry on CO2 absorption were investigated to optimize the system. The CO2 absorption increased with increasing superflcial gas velocity and decreasing slurry concentration. Fractional CO2 recovery increased with increasing the height of the slurry. The apparent rate constant and the apparent activation energy were determined in the reaction system. Moreover, an endurance test was conducted to confirm stable recovery capacity, in which the proposed CO2 recovering system performance was repeatedly maintained.
KW - Chemical Absorption
KW - Lithium Silicate
KW - Molten Salt
KW - Slurry Bubble Column
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U2 - 10.1252/jcej.12we076
DO - 10.1252/jcej.12we076
M3 - Article
AN - SCOPUS:84867858228
SN - 0021-9592
VL - 45
SP - 639
EP - 644
JO - Journal of Chemical Engineering of Japan
JF - Journal of Chemical Engineering of Japan
IS - 9
ER -