Bulk separation of hydrogen mixtures by a one-column PSA process

被引:49
|
作者
Yang, J [1 ]
Han, S [1 ]
Cho, C [1 ]
Lee, CH [1 ]
Lee, H [1 ]
机构
[1] YONSEI UNIV,COLL ENGN,DEPT CHEM ENGN,SEOUL 120749,SOUTH KOREA
来源
SEPARATIONS TECHNOLOGY | 1995年 / 5卷 / 04期
关键词
pressure swing adsorption; hydrogen mixtures; P/F ratio; adsorption time; LDF model;
D O I
10.1016/0956-9618(95)00128-X
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
An experimental and theoretical study was performed for bulk separation of two binary systems - H-2/CO2 and H-2/CO mixture (70/30 volume %) - by one-column PSA with zeolite 5A, a process widely used commercially in conjunction with catalytic steam reforming of natural gas or naphtha. In order to establish the optimal adsorption/desorption conditions of the PSA process, the dynamics of the adsorption/desorption process were studied through breakthrough and desorption experiments under various conditions. The purge-to-feed ratio was found important to H-2 product purity for cases with long adsorption step time. By cycling the pressure of a bed of zeolite between 1 atm and 11 atm and at ambient temperatures, H-2 could be concentrated from 70% in the feed to a product of 99.99% with a H-2 recovery of 67.5% for H-2/CO2 mixture and 97.09% with a H-2 recovery of 65.35% for H-2/CO mixture. Information concerning the function of each step in the cyclic process was given. The performance of all the five steps of the PSA process can be predicted by the LDF model together with the energy balance and equilibrium relationships. In applying the LDF model, the effective diffusivities (D-e) were obtained independently from up take curves of H-2, CO2, and CO by zeolite. The Langmuir-Freundlich isotherm was used to correlate the experimental equilibrium data and was very well fitted to the results.
引用
收藏
页码:239 / 249
页数:11
相关论文
共 50 条
  • [31] Separation of bulk carbon dioxide-hydrogen mixtures by selective surface flow membrane
    Paranjape, M
    Clarke, PF
    Pruden, BB
    Parrillo, DJ
    Thaeron, C
    Sircar, S
    ADSORPTION-JOURNAL OF THE INTERNATIONAL ADSORPTION SOCIETY, 1998, 4 (3-4): : 355 - 360
  • [32] The progress of PSA technology for hydrogen separation and purification
    Gu, GW
    Chen, J
    Gao, YCH
    Wei, XQ
    HYDROGEN ENERGY PROGRESS XIII, VOLS 1 AND 2, PROCEEDINGS, 2000, : 353 - 360
  • [33] Dynamics and simulation of PSA processes for hydrogen separation
    Yang, J
    Han, S
    Cho, C
    Lee, CH
    Lee, H
    FUNDAMENTALS OF ADSORPTION, 1996, : 1035 - 1042
  • [34] The effects of a readily adsorbed trace component (water) in a bulk separation PSA process: The case of oxygen VSA
    Wilson, SJ
    Beh, CCK
    Webley, PA
    Todd, RS
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2001, 40 (12) : 2702 - 2713
  • [35] Membrane column optimisation for the bulk separation of air
    Purnomo, ISK
    Alpay, E
    CHEMICAL ENGINEERING SCIENCE, 2000, 55 (18) : 3599 - 3610
  • [36] SUITABILITY OF THE SCHILDKNECHT COLUMN FOR THE SEPARATION OF SELECTED MIXTURES
    BRENDLER, L
    CHEMISCHE TECHNIK, 1983, 35 (10): : 542 - 542
  • [37] On the separation of multicomponent mixtures in a cylindrical thermogravitational column
    Kozlova, Sofia V.
    Ryzhkov, Ilya I.
    PHYSICS OF FLUIDS, 2016, 28 (11)
  • [38] Analysis of a piston PSA process for air separation
    Arvind, R
    Farooq, S
    Ruthven, DM
    CHEMICAL ENGINEERING SCIENCE, 2002, 57 (03) : 419 - 433
  • [39] Ethanol-Water Separation in the PSA Process
    M.J. Carmo
    J.C. Gubulin
    Adsorption, 2002, 8 : 235 - 248
  • [40] Ethanol-water separation in the PSA process
    Carmo, MJ
    Gubulin, JC
    ADSORPTION-JOURNAL OF THE INTERNATIONAL ADSORPTION SOCIETY, 2002, 8 (03): : 235 - 248