Hydrothermal synthesis of calcium aluminium hydrate-based adsorbent for the removal of CO2

被引:0
|
作者
A. Eisinas
J. Doneliene
K. Baltakys
A. Urbutis
机构
[1] Kaunas University of Technology,Department of Silicate Technology
[2] Kaunas University of Technology,Department of Physical and Inorganic Chemistry
关键词
Mayenite; Hydrothermal synthesis; Adsorption; Calcium aluminium hydrate;
D O I
暂无
中图分类号
学科分类号
摘要
In this paper, the influence of Al2O3 on the formation of calcium aluminium hydrate under hydrothermal conditions and the capture of CO2 by Al-based CaO adsorbent, which was prepared from natural calcined lime and synthetic calcium aluminium hydrate, was investigated. It has been determined that, in CaO–Al2O3–SiO2–H2O system, the main synthesis product was calcium aluminium hydrate and the quantity of Al2O3 additive in the primary mixtures affected the amount of formed CAH. It has been observed that the largest absorbed heat (~290 J g−1) of calcium aluminium hydrates was obtained after 8 h of hydrothermal treatment, in the mixtures with a higher amount of Al2O3. It has been estimated that synthetic calcium aluminium hydrates are stable till 225 °C and at a higher temperature are recrystallized to mayenite, while the basic diffraction maximum intensity of mayenite significantly increases in the temperature range of 650–900 °C and the solid-state reactions occurred at the temperature higher than 850 °C. A high value of CO2 capture will be characteristic to formed Al-based CaO adsorbent, and the uptake of CO2 by this adsorbent only slightly decreases from 0.358 at the first cycle to 0.337g(CO2)g(ads)-1\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$0.337{\text{g}}_{{({\text{CO}}_{{\text{2}}} {\text{)}}}} {\text{g}}_{{({\text{ads)}}}}^{{ - 1}}$$\end{document}at the eighth cycle.
引用
收藏
页码:537 / 544
页数:7
相关论文
共 50 条
  • [31] Hydrate-based separation of the CO2 + H2 mixtures. Phase equilibria with isopropanol aqueous solutions and hydrogen solubility in CO2 hydrate
    Skiba, Sergey
    Chashchin, Denis
    Semenov, Anton
    Yarakhmedov, Murtazali
    Vinokurov, Vladimir
    Sagidullin, Aleksey
    Manakov, Andrey
    Stoporev, Andrey
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (65) : 32904 - 32913
  • [32] Effect of temperature fluctuation on hydrate-based CO2 separation from fuel gas
    Xiaosen Li 1
    2.Guangzhou Center for Gas Hydrate Research
    3.Graduate University of Chinese Academy of Sciences
    Journal of Natural Gas Chemistry , 2011, (06) : 647 - 653
  • [33] Effect of temperature fluctuation on hydrate-based CO2 separation from fuel gas
    Li, Xiaosen
    Xu, Chungang
    Chen, Zhaoyang
    Wu, Huijie
    Cai, Jing
    JOURNAL OF NATURAL GAS CHEMISTRY, 2011, 20 (06): : 647 - 653
  • [34] Minireview of Hydrate-Based CO2 Separation from a CO2/CH4 Gas Mixture: Progress and Outlook
    Wu, Liang-Meng
    Li, Xi-Yue
    Xie, Feng-Mei
    Zhong, Dong-Liang
    Englezos, Peter
    Yan, Jin
    ENERGY & FUELS, 2022, 36 (18) : 10478 - 10488
  • [35] A Feasibility Study on Hydrate-Based Technology for Transporting CO2 from Industrial to Agricultural Areas
    Matsuo, Seiji
    Umeda, Hiroki
    Takeya, Satoshi
    Fujita, Toyohisa
    ENERGIES, 2017, 10 (05):
  • [36] Amine infused hydrogel-based CO2 gas storage technology for CO2 hydrate-based cold thermal energy storage
    Wang, Xiaolin
    Yang, Shufan
    Zhang, Hai
    Xu, Xingguang
    Wood, Colin D.
    Lipiński, Wojciech
    Journal of CO2 Utilization, 2021, 53
  • [37] Modeling of hydrate-based CO2 capture with nucleation stage and induction time prediction capability
    Dashti, Hossein
    Thomas, Daniel
    Amiri, Amirpiran
    JOURNAL OF CLEANER PRODUCTION, 2019, 231 : 805 - 816
  • [38] Carbon and energy footprint of the hydrate-based biogas upgrading process integrated with CO2 valorization
    Castellani, Beatrice
    Rinaldi, Sara
    Bonamente, Emanuele
    Nicolini, Andrea
    Rossi, Federico
    Cotana, Franco
    SCIENCE OF THE TOTAL ENVIRONMENT, 2018, 615 : 404 - 411
  • [39] The effect of additive molecular diameters on the hydrate-based CO2 capture from simulated biogas
    Bai, Jing
    Zhen, Xiang
    Yan, Kele
    Li, Pan
    Fang, Shuqi
    Chang, Chun
    FUEL, 2020, 278 (278)
  • [40] Kinetic and Performance Assessment of Hydrate-Based Precombustion CO2 Capture Using Dry Water
    Dadhich, Raghav
    Babu, Ponnivalavan
    Daraboina, Nagu
    ENERGY & FUELS, 2024, 38 (24) : 23625 - 23632