A sorptive reactor for CO2 capture and conversion to renewable methane

被引:87
|
作者
Miguel, C. V. [1 ]
Soria, M. A. [1 ]
Mendes, A. [1 ]
Madeira, L. M. [1 ]
机构
[1] Univ Porto, Fac Engn, Chem Engn Dept, LEPABE, Rua Dr Roberto Frias S-N, P-4200465 Oporto, Portugal
关键词
CO2 sorption and utilization; Reactive regeneration; Hybrid reactor; Methanation; Substitute natural gas; Power to Gas; WATER-GAS SHIFT; SUBSTITUTE NATURAL-GAS; HIGH-TEMPERATURE; CARBON-DIOXIDE; ADSORPTION; HYDROTALCITES; TECHNOLOGIES; SYSTEM;
D O I
10.1016/j.cej.2017.04.024
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The aim of this work is to contribute for the scientific advancement of carbon capture and utilization technologies (CCU), while exploring the integration of intermittent renewable electricity production and substitute natural gas (SNG) production, the so-called "Power-to-Gas" concept. In this regard, a sorptive reactor for carrying in the same unit both CO2 capture and conversion to SNG using renewable H-2 was studied, in a perspective of process intensification. The sorptive reactor containing a layered bed of a K-promoted hydrotalcite to capture CO2 by sorption (step 1) and a nickel-based catalyst for CO2 hydrogenation (step 2) is operated at 300-350 degrees C and low pressure (<= 2.5 bar). Integration of CO2 capture and conversion in the same unit leads to enhanced sorption capacities and desorption kinetics promoted by the steam produced in situ during the reactive regeneration stage (methanation reaction). The sorptive reactor working under continuous operation mode allows to: i) capture ca. 030 mol of CO2 per kilogram of sorbent and per sorption cycle, at 350 degrees C and p(CO2) = 0.2 bar; ii) completely convert the captured CO2 into CH4; iii) reach a productivity of ca. 2.36 mol(CH4).k g(Cat)(-1).h(-1); iv) avoid CO formation at 300 degrees C and 1.34 bar and v) reach a CH4 purity of 35% at 350 degrees C after N-2 purge. (C) 2017 Elsevier B.V. All rights reserved.
引用
收藏
页码:590 / 602
页数:13
相关论文
共 50 条
  • [21] CO2 capture, concentration & conversion technology
    Oconnor, Paul
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2017, 254
  • [22] A novel condensation reactor for efficient CO2 to methanol conversion for storage of renewable electric energy
    Bos, M. J.
    Brilman, D. W. F.
    CHEMICAL ENGINEERING JOURNAL, 2015, 278 : 527 - 532
  • [23] Costs of renewable energy and CO2 capture and storage
    Davison, J
    GREENHOUSE GAS CONTROL TECHNOLOGIES, VOLS I AND II, PROCEEDINGS, 2003, : 1125 - 1130
  • [24] Special Issue "CO2 Capture and Renewable Energy"
    Plaza, Marta G.
    Ribeiro, Rui P. P. L.
    ENERGIES, 2022, 15 (14)
  • [26] CO2 capture and conversion to methane with Ni-substituted hydrotalcite dual function extrudates
    Faria, A. Catarina
    Miguel, C. V.
    Ferreira, Alexandre F. P.
    Rodrigues, A. E.
    Madeira, Luis M.
    CHEMICAL ENGINEERING JOURNAL, 2023, 476
  • [27] Comparison of CO2 abatement by use of renewable energy and CO2 capture and storage
    Davison, J
    GREENHOUSE GAS CONTROL TECHNOLOGIES, 2001, : 851 - 856
  • [28] Sustainable CO2 management through integrated CO2 capture and conversion
    Zhang, Kexin
    Guo, Dongfang
    Wang, Xiaolong
    Qin, Ye
    Hu, Lin
    Zhang, Yujia
    Zou, Ruqiang
    Gao, Shiwang
    JOURNAL OF CO2 UTILIZATION, 2023, 72
  • [29] Author Correction: Coupling electrochemical CO2 conversion with CO2 capture
    Ian Sullivan
    Andrey Goryachev
    Ibadillah A. Digdaya
    Xueqian Li
    Harry A. Atwater
    David A. Vermaas
    Chengxiang Xiang
    Nature Catalysis, 2022, 5 : 75 - 76
  • [30] Scaling CO2 Capture With Downstream Flow CO2 Conversion to Ethanol
    Pace, Grant
    Sheehan, Stafford W.
    FRONTIERS IN CLIMATE, 2021, 3