Process intensification concepts for CO2 methanation- A review

被引:0
|
作者
Faria, Catarina [1 ,2 ,4 ]
Rocha, Claudio [1 ,4 ]
Miguel, Carlos [2 ]
Rodrigues, Alirio [3 ,4 ]
Madeira, Luis M. [1 ,4 ]
机构
[1] Univ Porto, Fac Engn, Dept Chem Engn, LEPABE Lab Proc Engn Environm Biotechnol & Energy, Rua Dr Roberto Frias S-N, P-4200465 Porto, Portugal
[2] Fraunhofer Portugal AWAM Res Ctr Adv Water, Energy & Resource Management, Regia Douro Pk-Parque Ciencia & Tecnol, P-5000033 Vila Real, Portugal
[3] Univ Porto, Fac Engn, LSRE LCM Lab Separat & React Engn, Lab Catalysis & Mat, Rua Dr Roberto Frias S-N, P-4200465 Porto, Portugal
[4] Univ Porto, Fac Engn, Dept Chem Engn, ALiCE Associate Lab Chem Engn, Rua Dr Roberto Frias S-N, P-4200465 Porto, Portugal
关键词
CO2 capture and utilization; Power-to-Gas; Methanation; Multifunctional reactors; POWER-TO-GAS; SITU WATER REMOVAL; FISCHER-TROPSCH SYNTHESIS; MEMBRANE APPLICATION; METHANOL SYNTHESIS; CARBON-DIOXIDE; CAPTURE; HYDROGENATION; SORPTION; CATALYSTS;
D O I
10.1016/j.fuel.2024.134269
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The combination of Power-to-Methane (PtM) and Carbon Capture and Utilization (CCU) concepts allows the simultaneous decrease of the greenhouse gas emissions (GHG), and the use of renewable electricity to produce synthetic natural gas (SNG) that can be stored and/or distributed by current gas infrastructure. In this way, CO2 and green H2 can be catalytically converted into synthetic methane via CO2 methanation reaction. This review focuses on studying process intensification strategies in CO2 methanation by using multifunctional reactors, more specifically units that simultaneously perform chemical reaction and separation processes. Instead of being separated and concentrated in a preliminary stage, the CO2 present at low concentration in flue gas (<= 15 vol%) or in the biogas streams (ca. 25-50 %) can be captured by adsorption and converted to CH4 in the same unit. Thus, in this type of device, a mixture of CO2 adsorbent and methanation catalyst (typically based on Ni or Ru) is placed inside the reactor to combine the two process units into a single device. In the last years, for such type of multifunctional reactor, dual function materials (DFMs) were also prepared and tested. DFM materials simultaneously contain a CO2 adsorbent and a methanation catalyst; this allows easier reactor packing and having the captured CO2 near the catalyst active sites during the reactive regeneration step (processing intensification is thus also reached at the particle level, including heat integration). Apart from flue gas sources of CO2, some projects related to Direct Air Capture (DAC) of CO2 are also addressed. Besides that, and for biogas streams, the high CH4 content (ca. 50 - 75 %) is unfavorable for the CO2 methanation reaction due to its reversible nature. Hence, the in situ capture/removal of water, the other reaction product, by using an H2O-selective adsorbent or a permselective membrane is also considered and allows to improve the performance of the CO2 methanation for biogas upgrading application, i.e., by shifting the reaction towards the production of more CH4. This concept (sorption-enhanced reactor) also presents benefits when considering other CO2 streams.
引用
收藏
页数:21
相关论文
共 50 条
  • [21] Catalysis mechanisms of CO2 and CO methanation
    Miao, Bin
    Ma, Su Su Khine
    Wang, Xin
    Su, Haibin
    Chan, Siew Hwa
    CATALYSIS SCIENCE & TECHNOLOGY, 2016, 6 (12) : 4048 - 4058
  • [22] Bimetallic Ni-Based Catalysts for CO2 Methanation: A Review
    Tsiotsias, Anastasios I.
    Charisiou, Nikolaos D.
    Yentekakis, Ioannis V.
    Goula, Maria A.
    NANOMATERIALS, 2021, 11 (01) : 1 - 34
  • [23] Mechanistic Insights into the CO2 Methanation Catalyzed by Supported Metals: A Review
    Solis-Garcia, Alfredo
    Fierro-Gonzalez, Juan C.
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2019, 19 (06) : 3110 - 3123
  • [24] Sorption enhanced CO2 methanation
    Borgschulte, Andreas
    Gallandat, Noris
    Probst, Benjamin
    Suter, Riccardo
    Callini, Elsa
    Ferri, Davide
    Arroyo, Yadira
    Erni, Rolf
    Geerlings, Hans
    Zuettel, Andreas
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2013, 15 (24) : 9620 - 9625
  • [25] Gold grafting for CO2 methanation
    Thomas West
    Nature Synthesis, 2023, 2 : 707 - 707
  • [26] Gold grafting for CO2 methanation
    West, Thomas
    NATURE SYNTHESIS, 2023, 2 (08): : 707 - 707
  • [27] Performance Intensification of CO2 Methanation by Co-Feeding Oxygen Over Various Ru-Based Catalysts
    Fukuhara, Choji
    Hirata, Nozomu
    Ozaki, Ren
    Watanabe, Ryo
    JOURNAL OF CHEMICAL ENGINEERING OF JAPAN, 2023, 56 (01)
  • [28] UTILIZATION OF CO2 METHANATION OF CO2 ON SUPPORTED RU CATALYSTS
    ERDOHELYI, A
    KOCSIS, M
    SOLYMOSI, F
    MAGYAR KEMIAI FOLYOIRAT, 1982, 88 (03): : 98 - 104
  • [29] Optimization of Operating Conditions for CO2 Methanation Process Using Design of Experiments
    Yeo, Chae-Eun
    Seo, Minhye
    Kim, Dongju
    Jeong, Cheonwoo
    Shin, Hye-Sun
    Kim, Suhyun
    ENERGIES, 2021, 14 (24)
  • [30] Review of CO2 Process Mechanisms
    SPE Monograph Series (Society of Petroleum Engineers of AIME), 2000, 22 : 13 - 38