Metastable structure II methane hydrate: A bridge to obtain high methane uptake in the presence of thermodynamic promoter

被引:8
|
作者
Yu, Yi-Song [1 ,2 ]
Li, Xiao-Sen [1 ,2 ]
机构
[1] Chinese Acad Sci, Guangzhou Inst Energy Convers, Key Lab Gas Hydrate, Guangzhou 510640, Peoples R China
[2] Guangdong Prov Key Lab New & Renewable Energy Res, Guangzhou 510640, Peoples R China
基金
中国国家自然科学基金;
关键词
Thermodynamic promoter; Gas storage capacity; Synergistic strategy; Structure II CH 4 hydrate; Water conversion to hydrate; PHASE-EQUILIBRIUM; CARBON-DIOXIDE; STORAGE; CYCLOPENTANE; HYDROGEN; DIFFRACTION; MIXTURES;
D O I
10.1016/j.cej.2023.147127
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The addition of thermodynamic promoters is a promising and perhaps the only effective method to reduce hydrate formation conditions. However, this is achieved at the cost of the gas storage capacity reduction since the thermodynamic promoter will occupy some hydrate cages. To date, there is no effective method that can simultaneously limit this negative effect and obtain high water-to-hydrate conversion. In this work, we determine the methane (CH4) hydrate formation mechanism in the presence of a thermodynamics promoter, Cyclopentane (CP), and find that structure II (Str.II) CH4 hydrate, as a metastable intermediate structure of the reaction, plays a quite significant role in encapsulating CH4 molecules in some 51264 cages (Str.II hydrates) and facilitating structure I CH4 hydrate formation, thereby increasing gas uptake significantly. A CH4 uptake, as high as 141.21 mmol/molH2O, is obtained from this work. Relative to the acknowledged limit of CH4 uptake of Str.II hydrates formed commonly in the presence of same mole fractions of thermodynamics promoter (8(Promoter)& sdot;16(CH4)& sdot;136H2O)), the highest increase in CH4 uptake is up to 232.75 %. These results would stimulate the development of the hydrate reaction theory and provide a new direction for promoter design.
引用
收藏
页数:9
相关论文
共 26 条
  • [21] Changes in structure and preferential cage occupancy of ethane hydrate and ethane-methane mixed gas hydrate under high pressure
    Hirai, H.
    Takahara, N.
    Kawamura, T.
    Yamamoto, Y.
    Yagi, T.
    INTERNATIONAL CONFERENCE ON HIGH PRESSURE SCIENCE AND TECHNOLOGY, JOINT AIRAPT-22 AND HPCJ-50, 2010, 215
  • [22] Experimental Study and Thermodynamic Modeling of Methane Hydrate Dissociation Conditions in the Simultaneous Presence of BMIM-BF4 and Ethanol in Aqueous Solution
    Ghaedi, Homa
    Javanmardi, Jafar
    Rasoolzadeh, Ali
    Mohammadi, Amir H.
    JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2018, 63 (05) : 1724 - 1732
  • [23] Morphology Study of Structure I Methane Hydrate Formation and Decomposition of Water Droplets in the Presence of Biological and Polymeric Kinetic Inhibitors
    Bruusgaard, Hallvard
    Lessard, Lindsay D.
    Servio, Phillip
    CRYSTAL GROWTH & DESIGN, 2009, 9 (07) : 3014 - 3023
  • [24] Binary Ethanol-Methane Clathrate Hydrate Formation in the System CH4-C2H5OH-H2O: Confirmation of Structure II Hydrate Formation
    Yasuda, Keita
    Takeya, Satoshi
    Sakashita, Mami
    Yamawaki, Hiroshi
    Ohmura, Ryo
    JOURNAL OF PHYSICAL CHEMISTRY C, 2009, 113 (28) : 12598 - 12601
  • [25] Recyclable and high-efficiency methane hydrate formation promoter based on SDS-coated superparamagnetic nano-Fe3O4
    Chen, Chen
    Yuan, Haoyu
    Wang, Xiaoming
    Lin, Yan
    He, Yan
    Wang, Fei
    CHEMICAL ENGINEERING JOURNAL, 2022, 437
  • [26] hr Thermodynamic modeling of methane hydrate equilibrium conditions in the presence of imidazolium based ionic liquids with the van der Waals-Platteeuw solid solution approach along with SRK and CPA EoS
    Nascimento, Debora Costa do
    Pelaquim, Fernanda Paludetto
    Bertoncin, Thiago Alves
    Neto, Antonio Marinho Barbosa
    da Costa, Mariana Conceicao
    FLUID PHASE EQUILIBRIA, 2023, 571