3d打印湍流促进器插入液压直径减小的气液膜接触器CO2吸收分析

IF 3.3 4区 工程技术 Q2 CHEMISTRY, PHYSICAL
Chii-Dong Ho, Yi-Wun Wang, Zheng-Zhong Chen, Thiam Leng Chew
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引用次数: 0

摘要

膜组件间吸收通量的下降是由于以单乙醇胺(MEA)为吸收剂的平板膜接触器的浓度极化电阻增加所致。研究人员发现,这种影响可以通过插入湍流促进剂来缓解,这种促进剂以增加功率消耗为代价来增强湍流强度,从而提高二氧化碳吸收通量。考虑到增加的功耗,通过减小嵌入式3d打印湍流促进器的液压直径,进一步提高了平板膜接触器的CO2吸收性能。本研究在平板气/液聚四氟乙烯/聚丙烯(PTFE/PP)膜模块上建立了包含化学反应的质量平衡模型,并进行了实验研究。基于串联阻力模型和塞流模型进行一维理论分析,预测了吸收通量和浓度分布。考虑不同的阵列配置和湍流促进剂的几何形状,权衡吸收通量的改善和功耗的增加,对具有促进剂填充通道的模块进行了经济分析。对采用均匀启动子宽度的模块的器件性能进行了评价和比较。此外,将CO2膜吸收模块的Sherwood数推广为简化表达式,用于预测插入3d打印湍流促进剂模块的传质系数。结果表明,减小水力通径工况吸收通量提高与耗电增量之比高于均匀水力通径工况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of CO2 Absorption in Gas/Liquid Membrane Contactors with Inserted Descending Hydraulic Diameters of 3D-Printed Turbulence Promoters.

The decline in absorption flux across membrane modules is attributed to the increase in concentration polarization resistance in flat-plate membrane contactors for CO2 absorption using monoethanolamine (MEA) as the absorbent. Researchers have discovered that this effect can be mitigated by inserting turbulence promoters, which enhance turbulence intensity at the cost of increased power consumption, thereby improving CO2 absorption flux. The performance of flat-plate membrane contactors for CO2 absorption was further enhanced by reducing the hydraulic diameters of embedded 3D-printed turbulence promoters, considering the increased power consumption. The mass-balance modeling, incorporating chemical reactions, was developed theoretically and conducted experimentally on a flat-plate gas/liquid polytetrafluoroethylene/polypropylene (PTFE/PP) membrane module in the present study. A one-dimensional theoretical analysis, based on the resistance-in-series model and the plug-flow model, was conducted to predict absorption flux and concentration distributions. An economic analysis was also performed on modules with promoter-filled channels, considering different array configurations and geometric shapes of turbulence promoters, weighing both absorption flux improvement and power consumption increment. Device performances were evaluated and compared with those of modules using uniform promoter widths. Additionally, the Sherwood number for the CO2 membrane absorption module was generalized into a simplified expression to predict the mass transfer coefficient for modules with inserted 3D-printed turbulence promoters. Results showed that the ratio of absorption flux improvement to power consumption increment in descending hydraulic-diameter operations is higher than in uniform hydraulic-diameter operations.

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来源期刊
Membranes
Membranes Chemical Engineering-Filtration and Separation
CiteScore
6.10
自引率
16.70%
发文量
1071
审稿时长
11 weeks
期刊介绍: Membranes (ISSN 2077-0375) is an international, peer-reviewed open access journal of separation science and technology. It publishes reviews, research articles, communications and technical notes. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. Full experimental and/or methodical details must be provided.
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