Molecular Dynamics simulation study of the performance of different inhibitors for methane hydrate growth

被引:29
|
作者
Castillo-Borja, Florianne [1 ]
Bravo-Sanchez, Ulises, I [1 ]
机构
[1] Tecnol Nacl Mexico, Dept Ing Quim, Inst Tecnol Aguascalientes, Av Lopez Mateos 1802 Ote, Aguascalientes, Aguascalientes, Mexico
关键词
Methane hydrate; Molecular Dynamics; Ionic liquid; Protic; Aprotic; Methanol; Ethylene glycol; FORCE-FIELD PARAMETERS; PROTIC IONIC LIQUIDS; PHASE-EQUILIBRIA; ETHYLENE-GLYCOL; 1-ETHYL-3-METHYLIMIDAZOLIUM CHLORIDE; CARBON-DIOXIDE; WATER; DISSOCIATION; MIXTURES; AMMONIUM;
D O I
10.1016/j.molliq.2021.116510
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The methane hydrates can form blockages that occlude the flow in oil and gas pipelines increasing the risk of pipeline rupture with economic losses and can even cause accidents. One of the alternatives to avoid these problems is to inject some gas hydrate inhibitor into the flow, in this way the stability conditions of the hydrate are shifted to higher pressures and lower temperatures or the hydrate growth can be delayed for a longer time. In this work, the effect over the methane hydrate growth is studied for six different types of gas hydrate inhibitors using Molecular Dynamics simulations: Methanol, ethylene glycol, two aprotic ionic liquids EMIM-Cl and EMIM-NO3, and two protic ionic liquids EAF and TMACl. Traditionally, inhibitors such as methanol have been used, and aprotic ionic liquids have been studied more recently, but protic ionic liquids have received very little attention. These compounds are worth studying because they represent economic advantages in their synthesis and purification. For these reasons, this work aims to deepen the way in which the three types of gas hydrate inhibitors, conventional thermodynamic inhibitors, aprotic and protic ionic liquids act at the atomistic level. The results of the simulations were used to calculate changes in the number of hydrogen bonds between water molecules, structural order parameters F-3 and F-4, partial density profiles and radial distribution functions between water and gas hydrate inhibitors. The results indicate that TMACl was the best preventing the growth of the methane hydrate. This is due to a decrease of up to 5% of the hydrogen bonds between the water molecules, with respect to those that are formed in a system without inhibitor. In this case the inhibitor can form several hydrogen bonds with other water molecules, which causes a competition between the inhibitor and the water molecules of the hydrate for the free liquid water molecules. (C) 2021 Elsevier B.V. All rights reserved.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] Molecular Dynamics Simulation and Experimental Study on the Growth of Methane Hydrate in Presence of Methanol and Sodium Chloride
    Choudhary, Nilesh
    Kushwaha, Omkar Singh
    Bhattacharjee, Gaurav
    Chakrabarty, Suman
    Kumar, Rajnish
    8TH INTERNATIONAL CONFERENCE ON APPLIED ENERGY (ICAE2016), 2017, 105 : 5026 - 5033
  • [2] Molecular dynamics simulation of methane hydrate formation in presence and absence of amino acid inhibitors
    Maddah, Mitra
    Maddah, Mina
    Peyvandi, Kiana
    JOURNAL OF MOLECULAR LIQUIDS, 2018, 269 : 721 - 732
  • [3] The growth of sII type methane hydrate influenced by thermodynamic inhibitors
    Liu, Yang
    Chen, Cong
    Chen, Zherui
    Wang, Haitao
    Hu, Kui
    Chen, Xi
    Du, Xiaotong
    CHEMICAL ENGINEERING SCIENCE, 2023, 276
  • [4] Molecular Dynamics Simulation of Methane Hydrate Dissociation Process in the Presence of Thermodynamic Inhibitor
    Wan Li-Hua
    Yan Ke-Feng
    Li Xiao-Sen
    Fan Shuan-Shi
    ACTA PHYSICO-CHIMICA SINICA, 2009, 25 (03) : 486 - 494
  • [5] Molecular dynamics simulation of replacement of methane hydrate with carbon dioxide
    Iwai, Yoshio
    Nakamura, Hiroki
    Hirata, Masashi
    MOLECULAR SIMULATION, 2012, 38 (06) : 481 - 490
  • [6] Modeling oceanic sedimentary methane hydrate growth through molecular dynamics simulation
    Fernandez-Fernandez, angel M.
    Barcena, Alvaro
    Conde, Maria M.
    Perez-Sanchez, German
    Perez-Rodriguez, Martin
    Pineiro, Manuel M.
    JOURNAL OF CHEMICAL PHYSICS, 2024, 160 (14)
  • [7] Molecular dynamics simulation of the effects of different thermodynamic parameters on methane hydrate dissociation: An analysis of temperature, pressure and gas concentrations
    Li, Kehan
    Chen, Bingbing
    Song, Yongchen
    Yang, Mingjun
    FLUID PHASE EQUILIBRIA, 2020, 516
  • [8] Molecular dynamics simulation study of the cosine oscillation electric field's effect on methane hydrate growth
    Shi, Lingli
    Li, Junhui
    Chen, Yong
    Lu, Jingsheng
    He, Yong
    Liang, Deqing
    ENERGY, 2024, 290
  • [9] Microscopic insights into synergism effect of different hydrate inhibitors on methane hydrate formation: Experiments and molecular dynamics simulations
    Liao, Bo
    Wang, Jintang
    Sun, Jinsheng
    Lv, Kaihe
    Liu, Lei
    Wang, Qi
    Wang, Ren
    Lv, Xindi
    Wang, Yudou
    Chen, Zhangxin
    FUEL, 2023, 340
  • [10] Molecular Dynamics Simulation of Methane Hydrate Decomposition in the Presence of Alcohol Additives
    Sun, Xiaoliang
    Zhou, Guanggang
    Zhu, Jianwei
    Wu, Haicheng
    Lu, Guiwu
    Bai, Dongsheng
    CHEMPHYSCHEM, 2019, 20 (19) : 2553 - 2565