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Modelling, simulation and analysis of intensified regenerator for solvent based carbon capture using rotating packed bed technology

机译:采用旋转填充床技术的溶剂型碳捕获强化蓄热再生器的建模,仿真和分析

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摘要

Intensified regenerator/stripper using rotating packed bed (RPB) for regeneration of rich-MEA solvent in post-combustion CO2 capture with chemical absorption process was studied through modelling and simulation in this paper. This is the first systematic study of RPB regenerator through modelling as there is no such publication in the open literature. Correlations for liquid and gas mass transfer coefficients, heat transfer coefficient, liquid hold-up, interfacial area and pressure drop which are suitable for RPB regenerator were written in visual FORTRAN as subroutines and then dynamically linked with Aspen Plus® rate-based model to replace the default mass and heat transfer correlations in the Aspen Plus®. The model now represents intensified regenerator/stripper. Model validation shows good agreement between model predictions and experimental data from literature. Process analyses were performed to investigate the effect of rotor speed on the regeneration efficiency and regeneration energy (including motor power). The rotor speed was varied from 200 to 1200 rpm, which was selected to cover the validation range of rotor speed. Impact of reboiler temperature on the rate of CO2 stripping was also investigated. Effect of rich-MEA flow rate on regeneration energy and regeneration efficiency was studied. All the process analyses were done for wide range of MEA concentration (32.6 wt%, 50 wt% and 60 wt%). Comparative study between regenerator using packed column and intensified regenerator using RPB was performed and the study shows a size reduction of 9.691 times. This study indicates that RPB process has great potential in thermal regeneration application.
机译:通过建模和仿真,研究了利用旋转填充床(RPB)强化再生器/汽提塔,通过化学吸收过程在燃烧后CO2捕集中再生富MEA溶剂。这是通过建模对RPB再生器进行的首次系统研究,因为公开文献中没有此类出版物。将适合RPB再生器的液体和气体传质系数,传热系数,液体滞留率,界面面积和压降的相关性作为子例程写在Visual FORTRAN中,然后与基于AspenPlus®速率的模型进行动态链接以替换AspenPlus®中默认的质量和热传递相关性。该模型现在代表强化的蓄热室/汽提塔。模型验证表明模型预测与文献中的实验数据之间具有很好的一致性。进行了过程分析,以研究转子速度对再生效率和再生能量(包括电动机功率)的影响。转子转速从200到1200 rpm不等,选择该转速以覆盖转子转速的验证范围。还研究了再沸器温度对CO 2汽提速率的影响。研究了富MEA流量对再生能量和再生效率的影响。所有过程分析均针对较广泛的MEA浓度(32.6 wt%,50 wt%和60 wt%)进行。进行了使用填充塔的再生器和使用RPB的强化再生器之间的对比研究,该研究表明,其尺寸减小了9.691倍。这项研究表明,RPB工艺在热再生应用中具有巨大的潜力。

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