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  4. Systematic approach to determination of optimum gas-phase mass transfer rate for high-gravity carbonation process of steelmaking slags in a rotating packed bed
 
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Systematic approach to determination of optimum gas-phase mass transfer rate for high-gravity carbonation process of steelmaking slags in a rotating packed bed

Journal
Applied Energy
Journal Volume
148
Pages
23-31
Date Issued
2015
Author(s)
Pan, S.-Y.  
Eleazar, E.G.
Chang, E.-E.
Kim, H.
YI-PIN LIN  
PEN-CHI CHIANG  
DOI
10.1016/j.apenergy.2015.03.047
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/463122
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84925727403&doi=10.1016%2fj.apenergy.2015.03.047&partnerID=40&md5=b98853abeddb638cd592fb3e17405241
Abstract
In order to reduce CO2 emissions and waste generation from the steelmaking industry, a high-gravity carbonation process via rotating packed bed (RPB) was developed using cold-rolling mill wastewater (CRW) and basic oxygen furnace slag (BOFS). Since mass transfer among phases is believed to be a key to effective carbonation for CO2 fixation, in this study, a mass transfer model for the high-gravity carbonation process was developed based on two-film theory. The mass transfer characteristics including overall gas-phase mass transfer coefficient (KGa) and height of a transfer unit (HTU) were determined accordingly. The results indicated that the mass transfer resistance of carbonation using BOFS/CRW in an RPB was mainly lay on the liquid side. In addition, the effect of key operating variables such as rotating speed, slurry flow rate, gas flow rate, and liquid-to-solid (L/S) ratio on mass transfer characteristics was evaluated. The developed model was validated with the experimental data, where the experimental KGa values lay within ±20% of the values estimated. Based on the obtained results, empirical models of KGa and HTU values were established. Furthermore, response surface methodology (RSM) was applied to optimize the high-gravity carbonation process from the viewpoint of mass transfer characteristics. The obtained RSM results were in fairly good agreement with the results of the developed model based on the two-film theory. Based on the theoretical models and statistical analyses, the optimum gas-phase mass transfer rate for high-gravity carbonation process of steelmaking slags in an RPB was graphically determined.
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[SDGs]SDG6

[SDGs]SDG9

[SDGs]SDG13

Type
journal article

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