Gas hydrate formation by allyl alcohol and CH4: Spectroscopic and thermodynamic analysis

被引:8
|
作者
Park, Ki Hun [1 ]
Cha, Minjun [1 ]
机构
[1] Kangwon Natl Univ, Dept Energy & Resources Engn, 1 Kangwondaehak Gil, Chuncheon Si 24341, Gangwon Do, South Korea
基金
新加坡国家研究基金会;
关键词
Gas Hydrate; Phase Equilibria; Structure Identification; Allyl Alcohol; Hydrogen Bonding; STRUCTURE-II HYDRATE; CLATHRATE HYDRATE; METHANE HYDRATE; PHASE-EQUILIBRIUM; CARBON-DIOXIDE; COLD ENERGY; WATER; IDENTIFICATION; DESALINATION; NITROGEN;
D O I
10.1007/s11814-019-0429-1
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We discovered a new structure II (sII) hydrate forming agent, allyl alcohol (AA), in the presence of methane (CH4) for the first time, and characterized the crystal structure, guest distribution, and phase equilibria of the (AA+CH4) hydrate. Using solid-state C-13 NMR and Raman spectroscopy, the crystal structure of the (AA+CH4) hydrate was confirmed to be a sII hydrate, and the CH4 molecule was found to be encapsulated in both the large and small cages of the sII hydrate. In addition, AA was found to be included in the large cages of the sII hydrate in the Gauche-Gauche form based on the measured- and calculated-NMR spectra. Notably, we investigated the free OH signal of AA in the Raman spectra to determine whether hydrogen bonding occurred between host and guest molecules; however, we could not determine whether the existence of the free OH signal was consistent with this host-guest interaction. To clearly identify the crystal structure and possible host-guest interactions, a high-resolution powder X-ray diffraction (HRPD) pattern of our (AA+CH4) hydrate sample was analyzed using Rietveld analysis with the direct space method. The crystal structure of the (AA+CH4) hydrate was assigned as the cubic Fd3m structure with a lattice constant of 17.1455 angstrom. In particular, the shortest distance between the AA molecule in the hydrate cages and an oxygen atom in the host water was estimated to be 2.55 angstrom; thus, we concluded that the hydroxyl group of the AA molecule was hydrogen-bonded to the host water framework. Finally, we measured the phase equilibrium conditions of the binary (AA+CH4) hydrate and found that the equilibrium pressure conditions of the binary (AA+CH4) hydrate were slightly higher than those of the pure CH4 hydrate.
引用
收藏
页码:151 / 158
页数:8
相关论文
共 50 条
  • [1] Gas hydrate formation by allyl alcohol and CH4: Spectroscopic and thermodynamic analysis
    Ki Hun Park
    Minjun Cha
    [J]. Korean Journal of Chemical Engineering, 2020, 37 : 151 - 158
  • [2] The effects of rhamnolipid on the formation of CH4 hydrate and separation of CH4/N2 via hydrate formation
    Zhang, Yi
    Zhang, Jingru
    Xu, Xingang
    Liu, Wanting
    Xu, Yongsheng
    Yang, Mingjun
    Song, Yongchen
    [J]. FUEL, 2024, 357
  • [3] On the importance of DIOX concentration in promoting CH4 hydrate formation: A thermodynamic and kinetic investigation
    Yao, Yuanxin
    Chen, Daoyi
    Yin, Zhenyuan
    [J]. FUEL, 2022, 324
  • [4] Behaviors of CH4 hydrate formation in cold seeps with underlying gas plume
    Guo, Xianwei
    Shi, Kangji
    Guan, Dawei
    Lv, Xin
    Li, Qingping
    Dong, Hongsheng
    Zhao, Jiafei
    Yang, Lei
    Liu, Zheyuan
    [J]. FUEL, 2021, 304
  • [5] Numerical simulation of CH4 hydrate formation in fractures
    Li, Sheng-Li
    Sun, You-Hong
    Su, Kai
    Guo, Wei
    Zhu, You-Hai
    [J]. ENERGY EXPLORATION & EXPLOITATION, 2018, 36 (05) : 1279 - 1294
  • [6] Effect of ionic liquid on CH4 hydrate formation thermodynamics
    Yue, Gang
    Liu, Yu
    Qin, Yong-hua
    Tian, Zong-ming
    Zhao, Xin-mei
    Liu, Xiao-xue
    Du, Zhen
    Zhang, Xin-bo
    Guo, Xu-qiang
    [J]. CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 2024,
  • [7] Thermodynamic Feasibility of the Black Sea CH4 Hydrate Replacement by CO2 Hydrate
    Kvamme, Bjorn
    Vasilev, Atanas
    [J]. ENERGIES, 2023, 16 (03)
  • [8] The effects of alkyl polyglucosides on the formation of CH4 hydrate and separation of CH4/N2 via hydrates formation
    Sun, Qiang
    Azamat, Amankulov
    Chen, Bo
    Guo, Xuqiang
    Yang, Lanying
    [J]. SEPARATION SCIENCE AND TECHNOLOGY, 2020, 55 (01) : 81 - 87
  • [9] Using magnetic resonance imaging to monitor CH4 hydrate formation and spontaneous conversion of CH4 hydrate to CO2 hydrate in porous media
    Baldwin, Bernard A.
    Stevens, Jim
    Howard, James J.
    Graue, Arne
    Kvamme, Bjorn
    Aspenes, Erick
    Ersland, Geir
    Husebo, Jarle
    Zornes, David R.
    [J]. MAGNETIC RESONANCE IMAGING, 2009, 27 (05) : 720 - 726
  • [10] Experimental and Numerical Analysis of the Effects of Clay Content on CH4 Hydrate Formation in Sand
    Bello-Palacios, Alejandro
    Almenningen, Stian
    Fotland, Per
    Ersland, Geir
    [J]. ENERGY & FUELS, 2021, 35 (12) : 9836 - 9846