Optimal year-round operation for methane production from CO2 and water using wind energy

被引:0
|
作者
Davis, William [1 ]
Martín, Mariano [1 ]
机构
[1] Department of Chemical Engineering, University of Salamanca, Pza. Caídos 1-5, 37008 Salamanca, Spain
关键词
Carbon dioxide - Electric power generation - Natural gas - Oxygen - Costs - Hydrogen production - Methane - Investments;
D O I
暂无
中图分类号
学科分类号
摘要
In this paper, we present the optimal year-round production of synthetic methane from water electrolysis using wind energy, and CO2 from power plants. The plant consists of a wind farm, a system of electrolyzers which produces oxygen and hydrogen from water, a series of equipment used to purify and store the oxygen; and the purification of hydrogen using a deoxygenation reactor and its reaction with CO2 to produce synthetic methane. We operate the plant over a year, considering monthly variability in wind velocity for constant methane production, and for variable methane production. We formulate the problem as a multiperiod NLP. The investment of a plant devoted to synthetic natural gas production is 375M€ for a production cost of synthetic methane of 13.1 €/MMBTU, a price that is currently over the selling price of natural gas. If the plant operates at constant methane production rate, the investment and production costs are almost double, but we can obtain credit from the electricity produced; 2.9kg of CO2 per kg of CH4 produced can be reused by this process. © 2014 Elsevier Ltd.
引用
收藏
页码:497 / 505
相关论文
共 50 条
  • [21] Methane recovery from methane hydrate using pressurized CO2
    Ota, M
    Abe, Y
    Watanabe, M
    Smith, RL
    Inomata, H
    FLUID PHASE EQUILIBRIA, 2005, 228 : 553 - 559
  • [22] Investigation into optimal CO2 concentration for CO2 capture from aluminium production
    Mathisen, Anette
    Sorensen, Henriette
    Melaaen, Morten
    Muller, Gunn-Iren
    GHGT-11, 2013, 37 : 7168 - 7175
  • [23] Year-round growing conditions explains large CO2 sink strength in a New Zealand raised peat bog
    Campbell, David I.
    Smith, Jeff
    Goodrich, Jordan P.
    Wall, Aaron M.
    Schipper, Louis A.
    AGRICULTURAL AND FOREST METEOROLOGY, 2014, 192 : 59 - 68
  • [24] Design, Development and Operation of the Energy Efficient CO2 Removal for the Oxidative Coupling of Methane
    Stuenkel, Steffen
    Torquet, Matthias
    Drescher, Andreas
    Wozny, Guenter
    PRES 2011: 14TH INTERNATIONAL CONFERENCE ON PROCESS INTEGRATION, MODELLING AND OPTIMISATION FOR ENERGY SAVING AND POLLUTION REDUCTION, PTS 1 AND 2, 2011, 25 : 689 - 694
  • [25] Thermodynamic Assessment of Different Feedstocks Gasification Using Supercritical Water and CO2 for Hydrogen and Methane Production
    Caraballo, Luis David Garcia
    dos Santos Jr, Julles Mitoura
    Zelioli, Icaro Augusto Maccari
    Santiago, York Castillo
    Bayer, Juan F. Perez
    Mariano, Adriano Pinto
    ENG, 2025, 6 (01):
  • [26] SUSTAINABLE TRANSPORTATION FUELS FROM OFF-PEAK WIND ENERGY, CO2, AND WATER
    Holte, Laura L.
    Doty, Glenn N.
    McCree, David L.
    Doty, Judy M.
    Doty, F. David
    ES2010: PROCEEDINGS OF ASME 4TH INTERNATIONAL CONFERENCE ON ENERGY SUSTAINABILITY, VOL 1, 2010, : 795 - 801
  • [27] Optimal scheduling for enhanced coal bed methane production through CO2 injection
    Huang, Yuping
    Zheng, Qipeng P.
    Fan, Neng
    Aminian, Kashy
    APPLIED ENERGY, 2014, 113 : 1475 - 1483
  • [28] Hydrogen production from Western coal including Co2 sequestration and coalbed methane recovery:: Economics, Co2 emissions, and energy balance
    Spath, P
    Amos, W
    ADVANCES IN HYDROGEN ENERGY, 2000, : 17 - 30
  • [29] Hydrogen production from CO2 reforming of methane using zirconia supported nickel catalyst
    Kurdi, Abdulrahman N.
    Ibrahim, Ahmed A.
    Al-Fatesh, Ahmed S.
    Alquraini, Abdullah A.
    Abasaeed, Ahmed E.
    Fakeeha, Anis H.
    RSC ADVANCES, 2022, 12 (17) : 10846 - 10854
  • [30] EMISSIONS OF CO2 FROM ENERGY CROP PRODUCTION
    TURHOLLOW, AF
    PERLACK, RD
    BIOMASS & BIOENERGY, 1991, 1 (03): : 129 - 135