Improving the in-situ upgrading of extra heavy oil using metal-based oil-soluble catalysts through oxidation process for enhanced oil recovery

被引:0
|
作者
Zare, Reza Nejad [1 ]
Mehrabi-Kalajahi, Seyedsaeed [2 ,3 ]
Varfolomeev, Mikhail A. [2 ,3 ]
Talipov, Sarvar [4 ]
Zinnatullin, Almaz L. [5 ]
Sadikov, Kamil G. [3 ]
Vagizov, Farit G. [5 ]
机构
[1] RUDN Univ, Peoples Friendship Univ Russia, Moscow 117198, Russia
[2] Kazan Fed Univ, Dept Petr Engn, Kazan 420008, Russia
[3] Kazan Fed Univ, Dept Phys Chem, Kazan 420008, Russia
[4] CUNY City Coll, Dept Chem Engn, 160 Convent Ave, New York, NY 10030 USA
[5] Kazan Fed Univ, Inst Phys, Kazan 420008, Russia
关键词
Oil-soluble catalyst; Extra heavy oil; In-situ combustion; In-situ upgrading; Nanoparticles; Enhanced oil recovery; CRUDE-OIL; HIGH-TEMPERATURE; COMBUSTION CHARACTERISTICS; NANOPARTICLES; PYROLYSIS; KINETICS; ASPHALTENES; PERFORMANCE; FRONT; FLOW;
D O I
10.1007/s13202-024-01813-8
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The demand for fuel from unconventional sources is increasing all over the world, however, there are still special and strict regulations regarding the methods of enhanced oil recovery as well as the content of the oil produced, including the amount of sulfur. In-situ combustion (ISC) is an attractive thermal method to enhance oil recovery and in-situ upgrading process. In this work, copper (II) oleate and copper (II) stearate were used for the oxidation of extra heavy oil with high sulfur content in the ISC process using a self-designed porous medium thermo-effect cell (PMTEC) and visual combustion tube. Using PMTEC the catalytic performances of the synthesized oil-soluble copper (II) oleate and copper (II) stearate and kinetic parameters such as activation energy using Ozawa-Flynn-Wall method were studied. The X-ray diffraction (XRD) and high-resolution field emission scanning electron microscopy were used to examine the characteristics of in-situ synthesized CuO nanoparticles during oxidation. As shown, the presence of oil-soluble copper (II) stearate and copper (II) oleate reduced oil viscosity from 9964 to 8000 and 6090 mPa(center dot)s, respectively. Following ISC process in porous media in the presence of copper (II) oleate, the high sulfur extra heavy oil upgraded, and its sulfur content decreased from 10.33 to 6.79%. Additionally, SARA analysis revealed that asphaltene and resin content decreased in the presence of oil-soluble catalysts. During the oxidation reaction, homogeneous catalyst decomposed into nanoparticles, and heterogeneous catalyst is distributed uniformly in porous media and played an active role in the catalytic process. It should be noticed that, these kind of oil-soluble catalysts can be novel and highly potential candidates for initiation and oxidation of extra heavy oil in order to decrease the viscosity, enhanced oil recovery and production of the upgraded oil.
引用
收藏
页码:2101 / 2112
页数:12
相关论文
共 50 条
  • [1] In-situ catalytic upgrading of heavy oil using oil-soluble transition metal-based catalysts
    Suwaid, Muneer A.
    Varfolomeev, Mikhail A.
    Al-muntaser, Ameen A.
    Yuan, Chengdong
    Starshinova, Valentina L.
    Zinnatullin, Almaz
    Vagizov, Farit G.
    Rakhmatullin, Ilfat Z.
    Emelianov, Dmitrii A.
    Chemodanov, Artem E.
    [J]. FUEL, 2020, 281
  • [2] Using the oil-soluble copper-based catalysts with different organic ligands for in-situ catalytic upgrading of heavy oil
    Suwaid, Muneer A.
    Varfolomeev, Mikhail A.
    Al-Muntaser, Ameen A.
    Abdaljalil, Nurulhuda, I
    Djimasbe, Richard
    Rodionov, Nikolay O.
    Zinnatullin, Almaz
    Vagizov, Farit G.
    [J]. FUEL, 2022, 312
  • [3] Using hydrogen donor with oil-soluble catalysts for upgrading heavy oil
    Zhao, Fajun
    Liu, Yongjian
    Fu, Zhiguo
    Zhao, Xin
    [J]. RUSSIAN JOURNAL OF APPLIED CHEMISTRY, 2014, 87 (10) : 1498 - 1506
  • [4] Using hydrogen donor with oil-soluble catalysts for upgrading heavy oil
    Fajun Zhao
    Yongjian Liu
    Zhiguo Fu
    Xin Zhao
    [J]. Russian Journal of Applied Chemistry, 2014, 87 : 1498 - 1506
  • [5] Improving the Performance of Heavy Oil Oxidation Using Oil- Soluble Copper-Based Catalysts in In Situ Combustion for the In Situ Upgrading Process
    Golafshani, Meisam Babapour
    Mehrabi-Kalajahi, Seyedsaeed
    Varfolomeev, Mikhail A.
    Sadikov, Kamil G.
    Emelianov, Dmitrii A.
    Rodionov, Nikolay O.
    Zinnatullin, Almaz L.
    Vagizov, Farit G.
    [J]. ENERGY & FUELS, 2023, 37 (09) : 6705 - 6714
  • [6] Upgrading heavy and extra-heavy crude oil by iron oil-soluble catalyst for transportation
    Li, Jingjing
    Chen, Xiaodong
    Tang, Xiaodong
    Deng, Liuyang
    Wei, Yutao
    [J]. PETROLEUM SCIENCE AND TECHNOLOGY, 2017, 35 (11) : 1160 - 1165
  • [7] In situ upgrading of heavy oil in a solvent-based heavy oil recovery process
    Luo, P.
    Yang, C.
    Tharanivasan, A. K.
    Gu, Y.
    [J]. JOURNAL OF CANADIAN PETROLEUM TECHNOLOGY, 2007, 46 (09): : 37 - 43
  • [8] Upgrading heavy and extra-heavy crude oil for transportation by use an iron oil-soluble catalyst
    Li, Jingjing
    Chen, Xiaodong
    Tang, Xiaodong
    Sun, Yongtao
    Liu, Haitao
    Deng, Liuyang
    Wei, Yutao
    [J]. PETROLEUM SCIENCE AND TECHNOLOGY, 2017, 35 (12) : 1203 - 1208
  • [9] Sunflower oil as renewable biomass source to develop highly effective oil-soluble catalysts for in-situ combustion of heavy oil
    Tajik, Arash
    Farhadian, Abdolreza
    Khelkhal, Mohammed A.
    Rezaeisadat, Morteza
    Petrov, Sergey M.
    Eskin, Alexey A.
    Vakhin, Alexey V.
    Golafshani, Meisam Babapour
    Lapuk, Semen E.
    Buzurov, Alexey E.
    Kiiamov, Airat
    Ancheyta, Jorge
    [J]. CHEMICAL ENGINEERING JOURNAL, 2023, 453
  • [10] Oxidation of Heavy Oil Using Oil-Dispersed Transition Metal Acetylacetonate Catalysts for Enhanced Oil Recovery
    Golafshani, Meisam Babapour
    Varfolomeev, Mikhail A.
    Mehrabi-Kalajahi, Seyedsaeed
    Rodionov, Nikolay O.
    Tahay, Pooya
    Zinnatullin, Almaz L.
    Emelianov, Dmitrii A.
    Vagizov, Farit G.
    Sadikov, Kamil G.
    Osin, Yuri N.
    [J]. ENERGY & FUELS, 2021, 35 (24) : 20284 - 20299