Inhibiting hydrate formation and agglomeration in water-in-waxy oil systems by combined anti-agglomerant: The synergistic effect between surfactants

被引:5
|
作者
Liu, Yang [1 ]
Chen, Jie [1 ]
Lv, Xiaofang [1 ,2 ]
Mu, Yi [1 ]
Ma, Qianli [1 ]
Meng, Jiawei [3 ]
Li, Peilong [1 ]
Zhou, Shidong [1 ]
Wang, Chuanshuo [1 ]
Sun, Bingcai [4 ]
机构
[1] Changzhou Univ, Jiangsu Key Lab Oil & Gas Storage & Transportat Te, Engn Lab High Value Utilizat Biomass Waste Petr &, Changzhou 213016, Jiangsu, Peoples R China
[2] Sinopec Northwest Oil Field Co, Inst Petr Engn Technol, Urumqi 830011, Xinjiang, Peoples R China
[3] PetroChina Huabei Oilfield Co, Cangzhou 062552, Hebei, Peoples R China
[4] CNPC Safety & Environm Protect Technol Res Inst Co, Beijing 102206, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
Flow assurance; Anti-agglomeration; Critical nucleation time; Viscosity; Yield stress; PLUG PREVENTION; GAS CONDENSATE; CRUDE-OIL; MODEL; SALT; INTERFACE; EMULSIONS; VISCOSITY; CUTS;
D O I
10.1016/j.molliq.2024.124047
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
Developing and screening economical, efficient, and environmentally friendly anti-agglomerants (AAs) to address obstructions caused by hydrate formation and agglomeration in complex multiphase systems (such as waxy and asphaltene-containing crude oil) has become one of the focal points in the flow assurance industry. In this study, a rheometer was utilized to investigate the formation characteristics of cyclopentane hydrates and the slurry rheological properties in water-in-oil systems with varying wax contents, different compositions of combined AA (CAA), and CAAs' concentrations. This was done to examine the performance of CAAs in both wax-free and wax-containing environments. The results showed that, compared to systems using Span 80 as a standalone anti-agglomerant, CAA exhibited better nucleation inhibition at a high subcooling degree of around 15 degrees C. That can be attributed to lower diffusion coefficient of water molecules according to molecular dynamic simulation. In the presence of wax crystals, the kinetic inhibition ability of the CAA would be affected. CAA at low dosage (<= 1 wt%) effectively reduced the maximum viscosity and steady viscosity of the slurry during hydrate formation (by 89.7 % and 94.5 %, respectively), demonstrating good anti-agglomeration performance. Additionally, the shear-thinning behavior and yield stress of hydrate slurries demonstrated the effective and stable ability of CAA to control hydrate blockages. In a wax-containing environment, the anti-agglomeration efficacy of CAA was weakened, requiring a minimum effective dosage of 1.5 wt%. CAAs exhibit synergism in promoting emulsification, inhibiting hydrate formation, and providing steric repulsion between hydrate particles, which possess the ability to inhibit hydrate formation and agglomeration for our 20 % water cut waxy oil-water systems.
引用
收藏
页数:14
相关论文
共 25 条
  • [1] Inhibiting hydrate formation and agglomeration in water-in-waxy oil systems by combined anti-agglomerant: The synergistic effect between surfactants
    Liu, Yang
    Chen, Jie
    Lv, Xiaofang
    Mu, Yi
    Ma, Qianli
    Meng, Jiawei
    Li, Peilong
    Zhou, Shidong
    Wang, Chuanshuo
    Sun, Bingcai
    Journal of Molecular Liquids, 2024, 397
  • [2] Hydrate formation in oil–water systems: Investigations of the influences of water cut and anti-agglomerant
    Guangchun Song
    Yuxing Li
    Wuchang Wang
    Kai Jiang
    Zhengzhuo Shi
    Shupeng Yao
    ChineseJournalofChemicalEngineering, 2020, 28 (02) : 369 - 377
  • [3] Hydrate formation in oil-water systems: Investigations of the influences of water cut and anti-agglomerant
    Song, Guangchun
    Li, Yuxing
    Wang, Wuchang
    Jiang, Kai
    Shi, Zhengzhuo
    Yao, Shupeng
    CHINESE JOURNAL OF CHEMICAL ENGINEERING, 2020, 28 (02) : 369 - 377
  • [4] Effect of wax/anti-agglomerant interactions on hydrate depositing systems
    Brown, Erika P.
    Turner, Doug
    Grasso, Giovanni
    Koh, Carolyn A.
    FUEL, 2020, 264
  • [5] Influence of Asphaltenes on Hydrate Formation and Decomposition in Water-in-Waxy Oil Emulsions
    Wang, Yijie
    Huang, Qiyu
    Zhang, Dongxu
    Wang, Kun
    Zhang, Xun
    Zhang, Yu
    Xu, Zhenkang
    Liu, WenChen
    ENERGY & FUELS, 2022, 36 (24) : 14710 - 14722
  • [6] Effect of cocoamidopropyl betaine on CH4 hydrate formation and agglomeration in waxy oil-water systems
    Liu, Jia
    Lin, Decai
    Liang, Deqing
    Li, Junhui
    Song, Zhiguang
    ENERGY, 2023, 270
  • [7] Study of hydrate formation in water-in-waxy oil emulsions considering heat transfer and mass transfer
    Liu, Yang
    Shi, Bohui
    Ding, Lin
    Ma, Qianli
    Chen, Yuchuan
    Song, Shangfei
    Zhang, Ye
    Yong, Yu
    Lv, Xiaofang
    Wu, Haihao
    Wang, Wei
    Gong, Jing
    FUEL, 2019, 244 : 282 - 295
  • [8] Experimental investigation on hydrate anti-agglomerant for oil-free systems in the production pipe of marine natural gas hydrates
    Zhao, Xin
    Fang, Qingchao
    Qiu, Zhengsong
    Mi, Shiyou
    Wang, Zhiyuan
    Geng, Qi
    Zhang, Yubin
    ENERGY, 2022, 242
  • [9] Experimental study of methane hydrate formation and agglomeration in waxy oil-in-water emulsions
    Wang, Lin
    Chen, Jiaxin
    Ma, Tingxia
    Jing, Jiaqiang
    Lei, Lijun
    Guo, Junyu
    ENERGY, 2024, 288
  • [10] Effect of the Ethylene Vinyl Acetate Copolymer on the Induction of Cyclopentane Hydrate in a Water-in-Waxy Oil Emulsion System
    Peng, Zeheng
    Wang, Wei
    Cheng, Lin
    Yu, Weijie
    Li, Kai
    Liu, Yingming
    Wang, Mengxin
    Xiao, Fan
    Huang, Huirong
    Liu, Yang
    Ma, Qianli
    Shi, Bohui
    Gong, Jing
    LANGMUIR, 2021, 37 (45) : 13225 - 13234