Rapid CO2 capture-to-mineralisation in a scalable reactor

文献信息

发布日期 2020-01-21
DOI 10.1039/C9RE00446G
影响因子 4.239
作者

Rafael M. Santos, Lidija Šiller


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摘要

CO2 mineralisation is a process that can convert CO2 into solid carbonates for permanent storage. Our multiphase flow process uses an alkaline brine solution to capture gaseous CO2 and form carbonate particles in a continuous tubular reactor. In this research, a monoethanolamine (MEA) solution is utilised to synergistically boost CO2 solubility in the brine while neutralising the acidification caused by brine chloride ions left in the solution following the precipitation of alkaline earth metals. In this study, relatively low concentrations of MEA, ranging from 0.036 to 0.33 M, were investigated over a temperature range from 303 K to 323 K; these are significantly milder conditions than those used in traditional CO2 capture processes with MEA, which contributes to low energy demand of the process. Short residence time, in the order of a few minutes, is made possible by the high gas–liquid surface area for mass transfer and the rapid kinetics of aqueous phase carbonation reactions. Nickel nanoparticles (NiNPs) were tested as a catalytic additive to further accelerate the rate limiting step (CO2 dissolution) by accelerating the CO2 hydration reaction. Experimental results were used to develop and calibrate a one-dimensional time-dependent plug-flow model that incorporates transport and chemical speciation equations. The model is thus capable of predicting aqueous species and solid carbonate concentrations, fluid pressure and gas slug size as a function of reactor length. These in turn yield the carbonation conversion and total pressure drop, and provide mechanistic insight into the reactor processes that can be used for scale-up. The experimental and modelled results showed a good agreement for a wide range of conditions tested: effects of temperature, brine composition, MEA concentration, and gas–liquid flow ratio. Under optimum conditions, it was found that the reactor could achieve full conversion of calcium from the brine and CO2 from the gas phase, thus proving to be an efficient process with high atom economy.

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Contents list

2024-01-22 Front/Back Matter

DOI: 10.1039/D4CS90006E

Chalcogen bonding catalysis

Govindasamy Sekar, Vysakh Venugopalan Nair, Jieping Zhu

2023-12-07 Tutorial Review

DOI: 10.1039/D3CS00503H

Functional materials for aqueous redox flow batteries: merits and applications

Fulong Zhu, Wei Guo, Yongzhu Fu

2023-11-10 Review Article

DOI: 10.1039/D3CS00703K

Revolutionizing the structural design and determination of covalent–organic frameworks: principles, methods, and techniques

Yikuan Liu, Xiaona Liu, An Su, Chengtao Gong, Shenwei Chen, Liwei Xia, Chengwei Zhang, Xiaohuan Tao, Yue Li, Yonghe Li, Tulai Sun, Mengru Bu, Wei Shao, Jia Zhao, Xiaonian Li, Yongwu Peng, Yihan Zhu

2023-12-15 Review Article

DOI: 10.1039/D3CS00287J

Front cover

2024-01-02 Cover

DOI: 10.1039/D4CS90001D

Recent advances in supramolecular fullerene chemistry

Youzhi Xu, Max von Delius

2023-10-18 Review Article

DOI: 10.1039/D2CS00937D

Hybrid classical/machine-learning force fields for the accurate description of molecular condensed-phase systems

Moritz Thürlemann, Sereina Riniker

2023-10-31 Edge Article

DOI: 10.1039/D3SC04317G

Nickel-catalysed asymmetric hydromonofluoromethylation of 1,3-enynes for enantioselective construction of monofluoromethyl-tethered chiral allenes

Ying Zhang, Jimin Yang, Yu-Long Ruan, Ling Liao, Chuang Ma

2023-10-23 Edge Article

DOI: 10.1039/D3SC04474B

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来源期刊

Reaction Chemistry & Engineering

Reaction Chemistry & Engineering
CiteScore: 0
自引率: 8.8%
年发文量: 284

Reaction Chemistry & Engineering is an interdisciplinary journal reporting cutting-edge research focused on enhancing the understanding and efficiency of reactions. Reaction engineering leverages the interface where fundamental molecular chemistry meets chemical engineering and technology. Challenges in chemistry can be overcome by the application of new technologies, while engineers may find improved solutions for process development from the latest developments in reaction chemistry. Reaction Chemistry & Engineering is a unique forum for researchers whose interests span the broad areas of chemical engineering and chemical sciences to come together in solving problems of importance to wider society. All papers should be written to be approachable by readers across the engineering and chemical sciences. Papers that consider multiple scales, from the laboratory up to and including plant scale, are particularly encouraged.

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