METHANE ADSORPTION ON MICROPOROUS CARBONS - A COMPARISON OF EXPERIMENT, THEORY, AND SIMULATION

被引:130
作者
AUKETT, PN
QUIRKE, N
RIDDIFORD, S
TENNISON, SR
机构
关键词
MOLECULAR MODEL; NITROGEN ADSORPTION; METHANE ADSORPTION; PORE-SIZE DISTRIBUTION;
D O I
10.1016/0008-6223(92)90015-O
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The adsorption of methane and nitrogen on a KOH-activated carbon, AX21, has been studied and the resulting data analysed using both conventional and molecular techniques. Molecular simulation clearly shows that the large methane-adsorption capacity of AX21 is due to an enhanced heat of adsorption brought about by the overlap of the wall forces from opposing pore walls in the microstructure. It is demonstrated that the methane-adsorption characteristics can only be rationalised using a nitrogen pore-size distribution derived using SNAP, an analysis method based on molecular methods. Conventional methods either severely underestimate (volume filling) or overestimate (capillary condensation-Kelvin equation) the mean pore size and also fail to reveal the bi-modal nature of the pore distribution. The molecular simulation approach has also demonstrated that the effective density of the adsorbed nitrogen deviates substantially from that of liquid nitrogen, particularly in small pores. A closer approximation to the true pore volume for microporous carbons may be obtained using a value of 0.93 g/ml rather than 0.808 g/ml for the density of liquid nitrogen.
引用
收藏
页码:913 / 924
页数:12
相关论文
共 50 条
  • [1] Fundamentals of methane adsorption in microporous carbons
    Alcaniz-Monge, J.
    Lozano-Castello, D.
    Cazorla-Amoros, D.
    Linares-Solano, A.
    MICROPOROUS AND MESOPOROUS MATERIALS, 2009, 124 (1-3) : 110 - 116
  • [2] Computer simulation of CO2/CH4 mixture adsorption in wet microporous carbons
    Sizova, A. A.
    Sizov, V. V.
    Brodskaya, E. N.
    COLLOID JOURNAL, 2015, 77 (01) : 82 - 90
  • [3] Effects of textural and surface characteristics of microporous activated carbons on the methane adsorption capacity at high pressures
    Bastos-Neto, M.
    Canabrava, D. V.
    Torres, A. E. B.
    Rodriguez-Castellon, E.
    Jimenez-Lopez, A.
    Azevedo, D. C. S.
    Cavalcante, C. L., Jr.
    APPLIED SURFACE SCIENCE, 2007, 253 (13) : 5721 - 5725
  • [4] Molecular Simulation of Methane Adsorption in Different Micro Porous Activated Carbons at Different Temperatures
    Rwiza, Rugarabamu John
    Zhao, Dongfeng
    Song, Kunli
    Li, Shi
    JOURNAL OF WUHAN UNIVERSITY OF TECHNOLOGY-MATERIALS SCIENCE EDITION, 2023, 38 (01): : 1 - 11
  • [5] Molecular Simulation of Methane Adsorption in Different Micro Porous Activated Carbons at Different Temperatures
    Rugarabamu John Rwiza
    Dongfeng Zhao
    Kunli Song
    Shi Li
    Journal of Wuhan University of Technology-Mater. Sci. Ed., 2023, 38 : 1 - 11
  • [6] The energy of adsorption of methane on microporous carbon adsorbents
    I. E. Men’shchikov
    A. A. Fomkin
    A. V. Shkolin
    E. M. Strizhenov
    D. S. Zaitsev
    A. V. Tvardovskii
    Protection of Metals and Physical Chemistry of Surfaces, 2017, 53 : 780 - 785
  • [7] The energy of adsorption of methane on microporous carbon adsorbents
    Men'shchikov, I. E.
    Fomkin, A. A.
    Shkolin, A. V.
    Strizhenov, E. M.
    Zaitsev, D. S.
    Tvardovskii, A. V.
    PROTECTION OF METALS AND PHYSICAL CHEMISTRY OF SURFACES, 2017, 53 (05) : 780 - 785
  • [8] Methane adsorption on AUK microporous carbon adsorbent
    A. V. Shkolin
    A. A. Fomkin
    V. A. Sinitsyn
    Colloid Journal, 2008, 70
  • [9] Thermodynamics of methane adsorption on microporous adsorbents at supercritical temperatures
    A. M. Tolmachev
    T. A. Kuznetsova
    N. G. Kryuchenkova
    P. E. Fomenkov
    Protection of Metals and Physical Chemistry of Surfaces, 2014, 50 : 694 - 698
  • [10] Molecular simulation of methane adsorption in micro- and mesoporous carbons with applications to coal and gas shale systems
    Mosher, Keith
    He, Jiajun
    Liu, Yangyang
    Rupp, Erik
    Wilcox, Jennifer
    INTERNATIONAL JOURNAL OF COAL GEOLOGY, 2013, 109 : 36 - 44