Feasibility of CO2 desorption and electrolytic regeneration of potassium carbonate solution in an anion exchange membrane cell

Daxue Fu, Yukun Wang, Shikai Yu
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Abstract

In this work, an electrolytic process was introduced for coupled regeneration of potassium carbonate (K2CO3) solution and water electrolysis by using an anion exchange membrane cell. The process made the CO2 separation from O2 much easier with respect to the existing cationic exchange membrane process. The solution of K2CO3 was used in the cathode chamber to simulate the solution after absorbing CO2. The solution of sulfuric acid (0.1 mol/L H2SO4) was charged in the anode chamber. The feasibility of the process was discussed. The effects of various operation parameters, including temperature, current density, and electrolysis time, were studied. The results indicate that both the yield rate of CO2 and the current efficiency increase initially and decrease afterward with temperature. The yield rate of CO2 increases while the current efficiency decreases with the current density. A low current density can reduce the energy consumption for producing the same amount of CO2. The processes using anion exchange membrane electrolysis can regenerate the absorbent solution to achieve 89% current efficiency, and the simultaneous production of three pure gases, CO2, H2, and O2, makes this method promising.
阴离子交换膜电池中碳酸钾溶液CO2解吸和电解再生的可行性
本文介绍了一种利用阴离子交换膜电池对碳酸钾(K2CO3)溶液和电解水进行耦合再生的电解工艺。与现有的阳离子交换膜工艺相比,该工艺使CO2与O2的分离更加容易。阴极室采用K2CO3溶液模拟吸收CO2后的溶液。在阳极腔内充入0.1 mol/L H2SO4硫酸溶液。讨论了该工艺的可行性。研究了温度、电流密度、电解时间等操作参数对电解效果的影响。结果表明,随着温度的升高,CO2产率和电流效率均呈先升高后降低的趋势。随着电流密度的增大,CO2的产率增加,而电流效率降低。低电流密度可以降低产生相同数量二氧化碳的能耗。阴离子交换膜电解法可再生吸收液,电流效率达89%,同时可产生3种纯气体:CO2、H2和O2,具有广阔的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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