Progress in the mechanical effects of gas solidification by hydrate in coal

被引:0
|
作者
Wu, Qiang [1 ]
Zhang, Baoyong [1 ]
机构
[1] School of Safety Engineering, Heilongjiang University of Science & Technology, Harbin,150022, China
来源
关键词
Coal;
D O I
暂无
中图分类号
学科分类号
摘要
Aiming at the real problems such as the occurrence of coal and gas outburst and based on the hypothesis of comprehensive action of coal and gas outburst, a method of gas hydration and solidification to prevent coal and gas outburst is proposed. The core of this method is to solidify the gas in coal seam to form gas hydrate, which can not only reduce the gas pressure, but also improve the coal strength, so as to reduce or eliminate the risk of coal and gas outburst. Based on the idea of coal and gas outburst prevention using hydrate, the test of gas hydrate formation in coal and the in-situ test of the mechanical property-permeability of gas hydrate bearing coal have been performed, with the numerical modeling technique of the triaxial compression of the gas hydrate bearing coal proposed. The techniques are implemented by comprehensively applying the methods of theoretical analysis, development of testing equipment, indoor test and numerical analysis. In terms of coal and gas outburst prevention, the thermodynamic and kinetic conditions of gas hydrate formation are its theoretical basis, the stable storage of gas hydrate is its technical precondition, and the reduction of gas pressure and the improvement of mechanical properties are its key measures. This paper focuses on the cross mechanics related to the gas hydrate bearing coal. The results show that: ① the theoretical framework of gas solidification technology by the hydrate method for outburst prevention has been initially formed, and the meso-mechanism of improving the mechanical characteristics of coal before and after gas hydration has been preliminarily explored by means of the numerical simulation. ② At present, it has been confirmed that the hydrate formation in coal can not only reduce the gas pressure, but also improve its mechanical properties. High saturation can obviously improve the peak strength of coal. ③ Gas hydrate formation experiences three stages: rapid, slow and stable stage. Additionally, the formation of hydrate will cause the gas seepage channel in the coal to be blocked, resulting in a decrease in its permeability. ④ High gas pressure and high CH4 concentration not only help to increase the saturation but also delay hydrate decomposition, which is conducive to the stable existence of the hydrate. However, a large number of repetitive experiments are still needed to verify the reliability of the method to build up a generalized database. By analyzing current research findings, the limitations and challenges that still exist are discussed, with further research interests pointed out. © 2024 China Coal Society. All rights reserved.
引用
收藏
页码:720 / 738
相关论文
共 50 条
  • [21] Mechanical properties of gas hydrate-bearing sediments during hydrate dissociation
    X.H.Zhang
    D.S.Luo
    X.B.Lu
    L.L.Liu
    C.L.Liu
    Acta Mechanica Sinica , 2018, (02) : 266 - 274
  • [22] Mechanical properties of gas hydrate-bearing sediments during hydrate dissociation
    X. H. Zhang
    D. S. Luo
    X. B. Lu
    L. L. Liu
    C. L. Liu
    Acta Mechanica Sinica, 2018, 34 : 266 - 274
  • [23] The Stirrer Rotation Effects Of Gas Hydrate Performance In The Hydrate Crystallizer
    Wijayanti, Widya
    DISRUPTIVE INNOVATION IN MECHANICAL ENGINEERING FOR INDUSTRY COMPETITIVENESS, 2018, 1983
  • [24] Rate of Formation and Decomposition of Gas Hydrate Formed in the Natural Coal
    Smirnov, V. G.
    Manakov, A. Yu
    Dyrdin, V. V.
    Kim, T. L.
    Shepeleva, S. A.
    RUSSIAN PHYSICS JOURNAL, 2020, 62 (10) : 1871 - 1881
  • [25] Effect of Coal Particle Size on the Kinetics of Gas Hydrate Formation
    Liu, Chuanhai
    Zhao, Liang
    Zhang, Baoyong
    Wu, Qiang
    Han, Huiming
    ACS OMEGA, 2023, 8 (48): : 46027 - 46033
  • [26] Rate of Formation and Decomposition of Gas Hydrate Formed in the Natural Coal
    V. G. Smirnov
    A. Yu. Manakov
    V. V. Dyrdin
    T. L. Kim
    S. A. Shepeleva
    Russian Physics Journal, 2020, 62 : 1871 - 1881
  • [27] Surfactant effects on gas hydrate formation
    Zhong, Y
    Rogers, RE
    CHEMICAL ENGINEERING SCIENCE, 2000, 55 (19) : 4175 - 4187
  • [28] Anti-gas hydrate surfaces: perspectives, progress and prospects
    Wang, Feng
    Ma, Rui
    Xiao, Senbo
    English, Niall J.
    He, Jianying
    Zhang, Zhiliang
    JOURNAL OF MATERIALS CHEMISTRY A, 2022, 10 (02) : 379 - 406
  • [29] Preface: Special Topics on Study Progress of Natural Gas Hydrate
    LU Hailong
    HE Tao
    Acta Geologica Sinica(English Edition), 2022, (02) : 661 - 662
  • [30] Research Progress on Characteristics of Marine Natural Gas Hydrate Reservoirs
    Yan, Jiajia
    Yan, Kefeng
    Huang, Ting
    Mao, Minghang
    Li, Xiaosen
    Chen, Zhaoyang
    Pang, Weixin
    Qin, Rui
    Ruan, Xuke
    ENERGIES, 2024, 17 (17)