Upgrading biogas by a low-temperature CO2 removal technique

被引:46
|
作者
Yousef, Ahmed M. I. [1 ]
Eldrainy, Yehia A. [1 ]
El-Maghlany, Wael M. [1 ]
Attia, Abdelhamid [1 ]
机构
[1] Univ Alexandria, Dept Mech Engn, Fac Engn, Alexandria, Egypt
关键词
Biogas upgrading; Carbon dioxide and methane separation; CO2 liquefaction and separation; Liquid CO2 from biogas; Low-temperature; Cryogenic energy; SEPARATION; CAPTURE;
D O I
10.1016/j.aej.2016.03.026
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Biogas, a renewable energy source, is primarily composed of methane and carbon dioxide and other gaseous species. Biogas upgrading for removing CO2 from raw biogas is a necessary step before the biogas to be used as vehicle fuel or injected into the natural gas grid. Therefore, the present work aimed to propose a low-temperature CO2 removal process as an alternative to the conventional biogas upgrading technologies (water scrubbing, chemical and physical scrubbing, membranes and Pressure swing adsorption). A typical model biogas mixture of 60 mol.% CH4 and 40 mol.% CO2 is considered. The present process showed that a product purity of 94.5 mol.% CH4 is obtained from compressed biogas by combining distillation, flash separation, auxiliary refrigeration and internal heat recovery with a potential specific energy consumption of 0.26 kW h/Nm(3) raw biogas. The process has been simulated in Aspen HYSYS with avoiding the occurrence of CO2 freeze-out. The process delivers the captured CO2 in liquid form with a purity of 99.7 mol.% as a by-product for transport at 110 bar. It is concluded that the proposed upgrading process can serve as a new environmentally friendly approach to CO2 removal with an interesting energy-efficient alternative to the conventional upgrading techniques. (C) 2016 Faculty of Engineering, Alexandria University. Production and hosting by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
引用
收藏
页码:1143 / 1150
页数:8
相关论文
共 50 条
  • [31] Simultaneous biogas upgrading, CO2 sequestration, and biogas slurry decrement using biomass ash
    Feng, Liang
    Liang, Feihong
    Xu, Lang
    Ji, Long
    He, Qingyao
    Yan, Shuiping
    [J]. WASTE MANAGEMENT, 2021, 133 : 1 - 9
  • [32] Low-temperature in situ CO2 enhanced oil recovery
    Wang, Shuoshi
    Ogbonnaya, Onyekachi
    Chen, Changlong
    Yuan, Na
    Shiau, Benjamin
    Harwell, Jeffrey H.
    [J]. FUEL, 2022, 329
  • [33] EFFECT OF LOW-TEMPERATURE ON CO2 ASSIMILATION IN PLANTS OF CEREALS
    KIRICHENKO, YB
    COUDRET, A
    VEISSEIR, P
    ADDAD, S
    CHERNYADYEV, II
    [J]. DOKLADY AKADEMII NAUK SSSR, 1991, 317 (01): : 246 - 250
  • [34] Low-temperature CO2 adsorption on Titania nanotubes (TNTs)
    Bhatta, Lakshminarayana Kudinalli Gopalakrishna
    Subramanyam, Seetharamu
    Chengala, Madhusoodana D.
    Bhatta, Umananda Manjunatha
    Venkatesh, Krishna
    [J]. SURFACES AND INTERFACES, 2017, 8 : 158 - 162
  • [35] Carbon corrosion in low-temperature CO2 electrolysis systems
    Ferrell, Jack R.
    Rasmussen, Mathew
    McNeary, W. Wilson
    [J]. SUSTAINABLE ENERGY & FUELS, 2024, 8 (15):
  • [36] Lead Looping for Low-Temperature CO2 Capture and Release
    Wu, Yi
    Liu, Juanjuan
    Zou, Shihui
    Kobayashi, Hisayoshi
    Fan, Jie
    [J]. JOURNAL OF PHYSICAL CHEMISTRY C, 2022, 126 (21): : 9009 - 9015
  • [37] An industrial perspective on catalysts for low-temperature CO2 electrolysis
    Masel, Richard I.
    Liu, Zengcai
    Yang, Hongzhou
    Kaczur, Jerry J.
    Carrillo, Daniel
    Ren, Shaoxuan
    Salvatore, Danielle
    Berlinguette, Curtis P.
    [J]. NATURE NANOTECHNOLOGY, 2021, 16 (02) : 118 - 128
  • [38] Low-temperature CO2 capture technologies - Applications and potential
    Berstad, David
    Anantharaman, Rahul
    Neksa, Petter
    [J]. INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2013, 36 (05): : 1403 - 1416
  • [39] An industrial perspective on catalysts for low-temperature CO2 electrolysis
    Richard I. Masel
    Zengcai Liu
    Hongzhou Yang
    Jerry J. Kaczur
    Daniel Carrillo
    Shaoxuan Ren
    Danielle Salvatore
    Curtis P. Berlinguette
    [J]. Nature Nanotechnology, 2021, 16 : 118 - 128
  • [40] WHY CO2 DOES NOT DISSOCIATE ON RH AT LOW-TEMPERATURE
    WEINBERG, WH
    [J]. SURFACE SCIENCE, 1983, 128 (2-3) : L224 - L230