Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8070843 | Energy | 2018 | 47 Pages |
Abstract
The macropore composite beads were prepared as CO2 adsorbent by polymerization of polyacrylamide and impregnation of 1,2-epoxyhexane functionalized poly(ethyleneimine). The consecutive CO2 adsorption-desorption tests were performed at 1â¯bar in the range of 50-125â¯Â°C. The time required to achieve 90% CO2 uptake (2.64â¯mmol·gâ1) is less than 10â¯min, and 90% CO2 desorption can be realized within 11â¯min. After 50 cycles of adsorption-desorption, the adsorption capacity declines 9.2â¯wt.%. According to the adsorption-desorption thermodynamics without consideration of the heat recovery, the calculated regeneration heat is 2.2â¯MJ·kgâ1(CO2). The attrition resistance of the spherical beads was tested in a bubbling fluidized-bed reactor, and the attrition ratio is 0.30â¯wt.%·hâ1 at 130â¯Â°C. These results indicate that the synthesized adsorbent possesses high adsorption efficiency, low desorption energy, and good attrition resistance performance, showing good application prospects for CO2 capture in fluidized-bed reactors.
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Physical Sciences and Engineering
Energy
Energy (General)
Authors
Lijuan Nie, Junsu Jin, Jian Chen, Jianguo Mi,