碳纳米管-水基纳米流体增强中空纤维膜接触器CO2吸收的建模与仿真

N. Ghasem
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引用次数: 21

摘要

利用COMSOL Multiphysics 5.4对水基碳纳米管纳米流体在气液中空纤维膜接触器中从含CO2和氮气的气体混合物中吸收CO2进行了建模和求解。该模型假设膜部分湿润,沿轴向和径向扩散。此外,模型还考虑了布朗运动和放牧效应。在外部扩散控制吸附的情况下,传质阻力的主要贡献是颗粒周围的停滞液体层,尽管该层非常薄。因此,纳米流体在中空纤维膜管侧的流动被建模为无固区和致密固相。模拟采用7%湿润膜厚度进行。结果表明,随着碳纳米管(CNT)浓度的增加,CO2吸收量显著增加。在固定的进口气体流量(20升/小时)下,将碳纳米管浓度从0.1 wt.%提高到0.25 wt.%,二氧化碳去除率从20%左右提高到45%。将模型预测结果与文献中已有的实验数据进行比较,证实了所建立模型的有效性。
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Modeling and Simulation of CO2 Absorption Enhancement in Hollow-Fiber Membrane Contactors using CNT–Water-Based Nanofluids
Absorption of CO2 from a gas mixture containing CO2 and nitrogen by water-based CNT nanofluids in gas–liquid hollow fiber membrane contactor was modeled and solved using COMSOL Multiphysics 5.4. The model assumed partial wetting of the membrane, along with diffusion in the axial and radial directions. In addition, Brownian motion and grazing effects were both considered in the model. The main contribution to the mass transfer resistance for the case of external diffusion-controlled adsorption is the stagnant liquid layer around the particles, despite the layer being very thin. Accordingly, the nanofluid flows in the lumen tube side of the hollow fiber membrane was modeled as a solid-free zone and dense solid phase. The simulations were performed using 7% wetting of the membrane thickness. The results showed a significant increase in CO2 absorption with increasing concentration of carbon nanotubes (CNT). At a fixed inlet gas flow rate (20 L/h), increasing the CNT concentration from 0.1 wt.% to 0.25 wt.% increased the CO2 removal from around 20% to 45%. Comparison of the model predictions with experimental data available in the literature confirmed the validity of the developed model.
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来源期刊
Journal of Membrane Science and Research
Journal of Membrane Science and Research Materials Science-Materials Science (miscellaneous)
CiteScore
4.00
自引率
0.00%
发文量
1
审稿时长
8 weeks
期刊介绍: The Journal of Membrane Science and Research (JMSR) is an Open Access journal with Free of Charge publication policy, which provides a focal point for academic and industrial chemical and polymer engineers, chemists, materials scientists, and membranologists working on both membranes and membrane processes, particularly for four major sectors, including Energy, Water, Environment and Food. The journal publishes original research and reviews on membranes (organic, inorganic, liquid and etc.) and membrane processes (MF, UF, NF, RO, ED, Dialysis, MD, PV, CDI, FO, GP, VP and etc.), membrane formation/structure/performance, fouling, module/process design, and processes/applications in various areas. Primary emphasis is on structure, function, and performance of essentially non-biological membranes.
期刊最新文献
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