充填床中CO2吸收的多方法研究:气相脉动的理论、实验和CFD视角

IF 5.9 3区 工程技术 Q1 CHEMISTRY, MULTIDISCIPLINARY
Chaturmukha Pattnaik , Ramesh Kumar , Moonis Ali Khan , Pallabi Pahari , Anirban Banik , Byong-Hun Jeon , Shirsendu Banerjee , Sankha Chakrabortty , Suraj K Tripathy
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引用次数: 0

摘要

本研究旨在通过用氢氧化钠取代胺基溶剂和气相脉动来提高填料床柱的CO2吸收效率,以提高传质系数。采用实验分析和计算流体力学模型研究了不同条件下脉动对吸收效率的影响。基本参数包括表面液体流速(1.2 ~ 4.6 cm/s)、脉动频率(0 ~ 10 Hz)、振幅(0 ~ 20 mm)和NaOH浓度(0.25 N ~ 2 N),同时保持表面气体流速为120 cm/s,溶质气体浓度为13%。对三种填料——玻璃球、陶瓷拉希环和陶瓷佩尔环进行了评价。结果表明,陶瓷Pall环效率最高。当脉动频率为9.06 Hz、振幅为20 mm时,Pall环的体积传质系数提高了4.53倍。增加柱直径(从7.00厘米到11.5厘米)提高性能。研究结果表明,在工业应用中,更有效的二氧化碳吸收(从使用胺基溶剂的化学吸收转变为使用氢氧化钠水溶液的传统化学吸收)取得了进展,有助于减缓气候变化举措。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A multi-approach study on CO2 absorption in packed beds: Theoretical, experimental, and CFD perspectives on gas phase pulsation

A multi-approach study on CO2 absorption in packed beds: Theoretical, experimental, and CFD perspectives on gas phase pulsation
This work seeks to improve CO2 absorption efficiency in packed bed columns by substituting amine-based solvents with sodium hydroxide and implementing gas phase pulsation to enhance mass transfer coefficients. Experimental analysis and computational fluid dynamics modeling were employed to investigate the impact of pulsation on absorption efficiency under various conditions. Essential parameters comprised superficial liquid velocity (1.2–4.6 cm/s), pulsation frequency (0–10 Hz), amplitude (0–20 mm), and NaOH concentration (0.25 N to 2 N), while maintaining a constant superficial gas velocity of 120 cm/s and a solute gas concentration of 13 %. Three packing materials—glass spheres, ceramic Raschig rings, and ceramic Pall rings—were evaluated. The results demonstrated that ceramic Pall rings exhibited the greatest efficiency. Pulsation, namely at 9.06 Hz and 20 mm amplitude, enhanced the volumetric mass transfer coefficient by as much as 4.53 times for Pall rings. Increased column diameters (from 7.00 cm to 11.5 cm) enhanced performance. The findings show advancement of more efficient CO2 absorption (by switching from chemical absorption using amine based solvents to classical chemical absorption using aqueous NaOH solution) for industrial applications, aiding climate change mitigation initiatives.
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来源期刊
CiteScore
10.40
自引率
6.60%
发文量
639
审稿时长
29 days
期刊介绍: Journal of Industrial and Engineering Chemistry is published monthly in English by the Korean Society of Industrial and Engineering Chemistry. JIEC brings together multidisciplinary interests in one journal and is to disseminate information on all aspects of research and development in industrial and engineering chemistry. Contributions in the form of research articles, short communications, notes and reviews are considered for publication. The editors welcome original contributions that have not been and are not to be published elsewhere. Instruction to authors and a manuscript submissions form are printed at the end of each issue. Bulk reprints of individual articles can be ordered. This publication is partially supported by Korea Research Foundation and the Korean Federation of Science and Technology Societies.
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