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
  • [41] Advancing the Hydrate-Based CO2 Separation Process by Implementing Spectroscopic Analysis and Process Simulation
    Go, Woojin
    Jung, Jongyeon
    Park, Myungchul
    Sohn, Young Hoon
    Lim, Junkyu
    Seo, Yongwon
    Seo, Yutaek
    ENERGY & FUELS, 2024, 38 (19) : 18918 - 18929
  • [42] 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.
    Lipinski, Wojciech
    JOURNAL OF CO2 UTILIZATION, 2021, 53
  • [43] Dependence of the hydrate-based CO2 storage process on the hydrate reservoir environment in high-efficiency storage methods
    Song, Yongchen
    Wang, Sijia
    Cheng, Zucheng
    Huang, Mingxing
    Zhang, Yi
    Zheng, Jianan
    Jiang, Lanlan
    Liu, Yu
    CHEMICAL ENGINEERING JOURNAL, 2021, 415 (415)
  • [44] Effects of operating mode and pressure on hydrate-based desalination and CO2 capture in porous media
    Yang, Mingjun
    Song, Yongchen
    Jiang, Lanlan
    Liu, Weiguo
    Dou, Binlin
    Jing, Wen
    APPLIED ENERGY, 2014, 135 : 504 - 511
  • [45] Hydrate-based desalination process using CO2 as hydrate forming agent - Modelling and techno-economic analysis
    Fernandes, Isabel S.
    Domingos, Mariana G.
    Costa, Marcelo F.
    Santos, Ricardo J.
    Lopes, Jose Carlos B.
    DESALINATION, 2025, 599
  • [46] Thermodynamic stability and component heterogeneity of CO2/N2 mixed hydrates: Implications for hydrate-based CO2 capture and sequestration
    Yao, Yuanxin
    Niu, Mengya
    Zi, Mucong
    Chen, Daoyi
    SEPARATION AND PURIFICATION TECHNOLOGY, 2025, 357
  • [47] Highly efficient separation and equilibrium recovery of H2/CO2 in hydrate-based pre-combustion CO2 capture
    Lee, Yunseok
    Lee, Seungin
    Seo, Dongju
    Moon, Seokyoon
    Ahn, Yun-Ho
    Park, Youngjune
    CHEMICAL ENGINEERING JOURNAL, 2024, 481
  • [48] Improvement of continuous hydrate-based CO2 separation by forming structure II hydrate in the system of H2 + CO2 + H2O + Tetrahydropyran (THP)
    Kiyokawa, Hitoshi
    Horii, Shunsuke
    Alavi, Saman
    Ohmura, Ryo
    FUEL, 2020, 278
  • [49] Amino acid-assisted effect on hydrate-based CO2 storage in porous media with brine
    Rehman, Amirun Nissa
    Bavoh, Cornelius Borecho
    Khan, Mohd Yusuf
    Lal, Bhajan
    RSC ADVANCES, 2024, 14 (13) : 9339 - 9350
  • [50] Hydrate-based CO2 capture from flue gas in constant pressure process with the presence of THF
    Yang, Mingjun
    Zhou, Hang
    Wang, Pengfei
    Li, Nan
    Song, Yongchen
    PROCEEDINGS OF THE 9TH INTERNATIONAL CONFERENCE ON APPLIED ENERGY, 2017, 142 : 3939 - 3943