Sorption-enhanced intensified CO2 hydrogenation via reverse water-gas shift reaction: Kinetics and modelling

被引:8
作者
Desgagnes, Alex [1 ]
Iliuta, Ion [1 ]
Iliuta, Maria C. [1 ]
机构
[1] Univ Laval, Dept Genie Chim, Quebec City, PQ G1V 0A6, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Reverse water-gas shift; In situ water removal; Sorption -enhanced intensified process; Kinetics; Modelling; DISSOCIATIVE ADSORPTION; MECHANISM; CATALYST; REMOVAL; CU(110); VAPOR; H-2;
D O I
10.1016/j.cej.2024.152052
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Intensification of CO2 hydrogenation via the reverse water-gas shift (RWGS) reaction for CO production can be achieved through in situ removal of water when hydrophilic adsorbents are incorporated alongside the catalyst in the reaction bed. In this work, seeking to move a step closer to the industrial implementation of this innovative CO2 valorization process, a comprehensive reactor model, validated by experimental data obtained in a fixed-bed reactor, was developed to simulate the behavior of this sorption-enhanced (SE) RWGS process. Simulation and experimental data matched with good accuracy, demonstrating the striking benefits brought by the adsorbent addition, such as an almost doubling of the CO production rate at 300 degrees C. The kinetics of RWGS reaction over a Cu-based catalyst and H2O adsorption on a 13X zeolite adsorbent were studied both experimentally and theoretically and the kinetic models were integrated into the reactor model to assess the performance of SE-RWGS process. Fitting of the RWGS reaction rates by a Langmuir-Hinschelwood-Hougen-Watson-type heterogeneous kinetic model suggested that the rate-determining step of the reaction is the surface interaction between an adsorbed CO2 molecule and a H* species on catalytic sites of different nature. Meanwhile, the dynamic behavior of water adsorption was effectively simulated by a semi-empirical double-stretched exponential model combined with the Sips isotherm model. The results of this work could be applied to the design and scale-up of the SERWGS process, which offers considerable improvements over the thermodynamically constrained conventional process. The intensified approach represents a promising avenue for the effective conversion of carbon dioxide into CO, as well as into other value-added chemicals as part of a multi-stage CO2 reduction process.
引用
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页数:18
相关论文
共 47 条
[1]   In situ FTIR investigations of reverse water gas shift reaction activity at supercritical conditions [J].
Arunajatesan, V. ;
Subramaniam, B. ;
Hutchenson, K. W. ;
Herkes, F. E. .
CHEMICAL ENGINEERING SCIENCE, 2007, 62 (18-20) :5062-5069
[2]   Simulation of CO2 hydrogenation with CH3OH removal in a zeolite membrane reactor [J].
Barbieri, G ;
Marigliano, G ;
Golemme, G ;
Drioli, E .
CHEMICAL ENGINEERING JOURNAL, 2002, 85 (01) :53-59
[3]   Unravelling the Role of Oxygen Vacancies in the Mechanism of the Reverse Water-Gas Shift Reaction by Operando DRIFTS and Ultraviolet-Visible Spectroscopy [J].
Bobadilla, Luis F. ;
Santos, Jose L. ;
Ivanova, Svetlana ;
Odriozola, Jose A. ;
Urakawa, Atsushi .
ACS CATALYSIS, 2018, 8 (08) :7455-7467
[4]   THE DISSOCIATIVE ADSORPTION OF H-2 AND D2 ON CU(110) - ACTIVATION BARRIERS AND DYNAMICS [J].
CAMPBELL, JM ;
CAMPBELL, CT .
SURFACE SCIENCE, 1991, 259 (1-2) :1-17
[5]   Sorption-enhanced reaction process [J].
Carvill, BT ;
Hufton, JR ;
Anand, M ;
Sircar, S .
AICHE JOURNAL, 1996, 42 (10) :2765-2772
[6]   Mechanism of CO formation in reverse water-gas shift reaction over Cu/Al2O3 catalyst [J].
Chen, CS ;
Cheng, WH ;
Lin, SS .
CATALYSIS LETTERS, 2000, 68 (1-2) :45-48
[7]   Theoretical Insights and the Corresponding Construction of Supported Metal Catalysts for Highly Selective CO2 to CO Conversion [J].
Chen, Xiaodong ;
Su, Xiong ;
Su, Hai-Yan ;
Liu, Xiaoyan ;
Miao, Shu ;
Zhao, Yonghui ;
Sun, Keju ;
Huang, Yanqiang ;
Zhang, Tao .
ACS CATALYSIS, 2017, 7 (07) :4613-4620
[8]   Computational Approaches to the Chemical Conversion of Carbon Dioxide [J].
Cheng, Daojian ;
Negreiros, Fabio R. ;
Apra, Edoardo ;
Fortunelli, Alessandro .
CHEMSUSCHEM, 2013, 6 (06) :944-965
[9]   Reverse Water-Gas Shift Iron Catalyst Derived from Magnetite [J].
Chou, Chen-Yu ;
Loiland, Jason A. ;
Lobo, Raul F. .
CATALYSTS, 2019, 9 (09)
[10]  
David R.L, 2005, CRC Handbook of Chemistry and Physics, Internet Version 2005