Shahkarami Sepideh, Azargohar Ramin, Dalai Ajay K, Soltan Jafar
Department of Chemical and Biological Engineering, University of Saskatchewan, 57 Campus Drive, Saskatoon, SK S7N 5A9, Canada.
Department of Chemical and Biological Engineering, University of Saskatchewan, 57 Campus Drive, Saskatoon, SK S7N 5A9, Canada.
J Environ Sci (China). 2015 Aug 1;34:68-76. doi: 10.1016/j.jes.2015.03.008. Epub 2015 May 26.
In this work, the effects of different methods of activation on CO2 adsorption performance of activated carbon were studied. Activated carbons were prepared from biochar, obtained from fast pyrolysis of white wood, using three different activation methods of steam activation, CO2 activation and Potassium hydroxide (KOH) activation. CO2 adsorption behavior of the produced activated carbons was studied in a fixed-bed reactor set-up at atmospheric pressure, temperature range of 25-65°C and inlet CO2 concentration range of 10-30 mol% in He to determine the effects of the surface area, porosity and surface chemistry on adsorption capacity of the samples. Characterization of the micropore and mesopore texture was carried out using N2 and CO2 adsorption at 77 and 273 K, respectively. Central composite design was used to evaluate the combined effects of temperature and concentration of CO2 on the adsorption behavior of the adsorbents. The KOH activated carbon with a total micropore volume of 0.62 cm(3)/g and surface area of 1400 m(2)/g had the highest CO2 adsorption capacity of 1.8 mol/kg due to its microporous structure and high surface area under the optimized experimental conditions of 30 mol% CO2 and 25°C. The performance of the adsorbents in multi-cyclic adsorption process was also assessed and the adsorption capacity of KOH and CO2 activated carbons remained remarkably stable after 50 cycles with low temperature (160°C) regeneration.
在本研究中,考察了不同活化方法对活性炭二氧化碳吸附性能的影响。以白木快速热解制备的生物炭为原料,采用蒸汽活化、二氧化碳活化和氢氧化钾(KOH)活化三种不同的活化方法制备活性炭。在常压下、25 - 65°C的温度范围以及氦气中10 - 30 mol%的入口二氧化碳浓度范围内,在固定床反应器装置中研究了所制备活性炭的二氧化碳吸附行为,以确定比表面积、孔隙率和表面化学性质对样品吸附容量的影响。分别在77 K和273 K下使用氮气和二氧化碳吸附对微孔和中孔结构进行表征。采用中心复合设计评估温度和二氧化碳浓度对吸附剂吸附行为的综合影响。在30 mol%二氧化碳和25°C的优化实验条件下,总微孔体积为0.62 cm³/g且比表面积为1400 m²/g的KOH活化活性炭具有最高的二氧化碳吸附容量,为1.8 mol/kg。还评估了吸附剂在多循环吸附过程中的性能,KOH和二氧化碳活化活性炭在低温(160°C)再生50次循环后,吸附容量仍保持显著稳定。