The effect of solid adsorbents in Triethanolamine (TEA) solution for enhanced CO2 absorption rate

Author(s):  
Zohreh Khoshraftar ◽  
Ahad Ghaemi ◽  
Amir Hossein Mohseni Sigaroodi
1998 ◽  
Vol 547 ◽  
Author(s):  
T. Ohashi ◽  
K. Nakagawa

AbstractLithium zirconate, which reacts with CO2 reversibly at temperatures over 500°C, is expected to find wider application than conventional CO2 absorbents, as the latter can be used only at room temperature. We examined the effect of potassium carbonate, which had usually been added to facilitate the formation of lithium zirconate in the past, on the kinetics of CO2 absorption reaction. The result shows that the CO2 absorption rate of lithium zirconate powder is extremely accelerated by the potassium carbonate additive. We conclude that this acceleration results from the formation of a eutectic carbonate composed of Li2CO3 and K2CO3.


Author(s):  
S. Fabbricino ◽  
S. Del Prete ◽  
M.E. Russo ◽  
C. Capasso ◽  
A. Marzocchella ◽  
...  

2018 ◽  
Vol 182 ◽  
pp. 56-66 ◽  
Author(s):  
Ye Yuan ◽  
Gary T. Rochelle

2018 ◽  
Vol 12 (1) ◽  
pp. 67-79 ◽  
Author(s):  
Rouzbeh Ramezani ◽  
Saeed Mazinani ◽  
Renzo Di Felice

Background: Separation of CO 2 as the major cause of global warming is essential. In this work, potassium carbonate (K 2 CO 3 ) solution was selected as a base solvent for CO 2 absorption due to its ease of regeneration energy, low cost and low environmental impact. However, the absorption rate of CO 2 with K 2 CO 3 needs to be improved by adding a suitable promoter. Therefore, the performance of CO 2 in K 2 CO 3 solution promoted by triethylenetetramine (TETA) in terms of absorption capacity and absorption rate of CO2 was studied. Method: Experiments were conducted at a total concentration of 2.5 (M) with different TETA mole fractions at temperatures of 303, 313 and 323 K, and CO2 partial pressure up to 30 kPa using a stirred cell reactor. The effect of CO2 partial pressure, temperature and concentration of TETA on absorption capacity and absorption rate of CO2 in K2CO3+TETA solution was discussed in detail. Results: The CO2 loading capacity obtained in this work was compared with monoethanolamine (MEA) and a better performance was observed for K2CO3+TETA solution. In addition, experimental results revealed that the addition of TETA to K2CO3 improved the CO2 reaction rate. Finally, the response surface methodology was employed to correlate the CO2 solubility. It was found that the correlated data are in good agreement with the experiment results. Conclusion: As an overall conclusion, the solution of K2CO3+TETA can be used as a promising absorbent in post combustion CO2 capture processes.


Processes ◽  
2021 ◽  
Vol 9 (9) ◽  
pp. 1580
Author(s):  
Chii-Dong Ho ◽  
Hsuan Chang ◽  
Yih-Hang Chen ◽  
Jun-Wei Lim ◽  
Jing-Wei Liou

A new design of gas absorption that winds the permeable membrane onto an inner concentric tube to conduct a concentric circular gas–liquid membrane module has been studied theoretically in the fully developed region. An analytical formulation, referred to as conjugated Graetz problems, is developed to predict the concentration distribution and Sherwood numbers for the absorbent fluid flowing in the shell side and CO2/N2 gas mixture flowing in the tube side under various designs and operating parameters. The analytical solutions to the CO2 absorption efficiency were developed by using a two-dimensional mathematical modeling, and the resultant conjugated partial differential equations were solved analytically using the method of separation variables and eigen-function expansion in terms of power series. The predictions of CO2 absorption rate by using Monoethanolamide (MEA) solution in concentric circular membrane contactors under both concurrent- and countercurrent-flow operations are developed theoretically and confirmed with the experimental results. Consistency in both a good qualitative and quantitative sense is achieved between the theoretical predictions and experimental results. The advantage of the present mathematical treatment provides a concise expression for the chemical absorption of CO2 by MEA solution to calculate the absorption rate, absorption efficiency, and average Sherwood number. The concentration profiles with the mass-transfer Graetz number, inlet CO2 concentration, and both gas feed and absorbent flow rates are also emphasized. Both theoretical predictions and experimental results show that the device performance of the countercurrent-flow operation is better than that of the concurrent-flow device operation. The availability of such simplified expressions of the absorption rate and averaged Sherwood as developed directly from the analytical solutions is the value of the present study.


2011 ◽  
Vol 4 ◽  
pp. 1286-1293 ◽  
Author(s):  
Yongqi Lu ◽  
Xinhuai Ye ◽  
Zhaohui Zhang ◽  
Arezoo Khodayari ◽  
Tatiana Djukadi

2008 ◽  
Vol 116 (1360) ◽  
pp. 1283-1288 ◽  
Author(s):  
Takeshi OKUMURA ◽  
Yusuke MATSUKURA ◽  
Kimika GOTOU ◽  
Katsuyoshi OH-ISHI

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