Thermo-oxidative characteristics and kinetics of light, heavy, and extra-heavy crude oils using accelerating rate calorimetry

被引:25
作者
Zhao, Shuai [1 ]
Pu, Wanfen [1 ]
Pan, Jingjun [2 ]
Chen, Sen [2 ]
Zhang, Liwei [2 ]
机构
[1] Southwest Petr Univ, State Key Lab Oil & Gas Reservoir Geol & Exploita, Chengdu 610500, Peoples R China
[2] PetroChina Xinjiang Oilfield Co, Res Inst Technol, 36 Yingbin Rd, Karamay 834000, Peoples R China
关键词
Thermo-oxidative characteristics; Kinetics; Heavy oil; Extra-heavy oil; Accelerating rate calorimetry; Combustion; LOW-TEMPERATURE OXIDATION; IN-SITU COMBUSTION; THERMAL-ANALYSIS; BEHAVIOR;
D O I
10.1016/j.fuel.2021.123001
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 thermo-oxidative characteristics and kinetics of crude oil directly affected the combustion performance and oil upgrading. This paper brought an in-depth analysis regarding quasi-adiabatic oxidation of crude oil that was still less well-understood. Firstly, the thermo-oxidative characteristics of light, heavy, and extra-heavy oils were studied using accelerating rate calorimetry (ARC). The thermo-oxidative kinetic analysis was then conducted. Particular emphasis was put on the differences into the auto-ignition temperature, exothermic extension of reactions, and kinetic parameters of heavy and extra-heavy oils, with the intent of achieving stable combustion and heavy oil upgrading. The results showed that the light oil encountered heat release triggered by low-temperature oxidation at the reservoir pressure and temperature (7.8 MPa and 95 degrees C), and its self-ignition temperature was determined to be 100 degrees C. A continuous heat release was observed in the entire oxidation process, suggesting the air injection might be appropriate for the light oil reservoir. There was no self-exothermic signal at the reservoir pressure and temperature (6.3 MPa and 35 degrees C) during heavy oil oxidation, and the onset self-exothermic oxidation temperature was found to be 50 degrees C. Compared with heavy oil, the extra-heavy oil had the obviously higher onset self-exothermic temperature and auto-ignition temperature. This meant that higher ignition temperatures and more lasting ignition time were required when considering in-situ combustion (ISC) of extra-heavy oil. According to the ARC results obtained, we suggested that the near-wellbore areas of the heavy and extraheavy oil reservoirs were heated up to 120 and 180 degrees C, respectively. In this scenario, a large amount of heat could be released due to oil oxidation, thereby causing highly efficient upgrading of heavy oil. Additionally, the values of activation energy further confirmed that the heavy oil could be oxidized more easily compared to the extra-heavy oil. The oxidation reactions of heavy oil were less concentration-dependent in comparison with light and extra-heavy oils, indicated by the reaction order. Some new insights derived from this study facilitated achieving rapid and stable combustion, resulting in crude oil upgrading.
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页数:7
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共 38 条
  • [1] Thermal Analysis and Combustion Kinetic of Heavy Oils and Their Asphaltene and Maltene Fractions Using Accelerating Rate Calorimetry
    dos Santos, Ronaldo G.
    Vidal Vargas, Janeth A.
    Trevisan, Osvair V.
    [J]. ENERGY & FUELS, 2014, 28 (11) : 7140 - 7148
  • [2] Air Injection for Enhanced Oil Recovery: In Situ Monitoring the Low-Temperature Oxidation of Oil through Thermogravimetry/Differential Scanning Calorimetry and Pressure Differential Scanning Calorimetry
    Fan, Cheng
    Zan, Cheng
    Zhang, Qiang
    Shi, Lin
    Hao, Qiangsheng
    Jiang, Hang
    Wei, Fei
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2015, 54 (26) : 6634 - 6640
  • [3] Chemical-Reaction Mechanisms That Govern Oxidation Rates During In-Situ Combustion and High-Pressure Air Injection
    Freitag, N. P.
    [J]. SPE RESERVOIR EVALUATION & ENGINEERING, 2016, 19 (04) : 645 - 654
  • [4] Evolution of mass losses and evolved gases of crude oil and its SARA components during low-temperature oxidation by isothermal TG-FTIR analyses
    Huo, Jin
    Zhao, Shuai
    Pan, Jingjun
    Pu, Wanfen
    Varfolomeev, Mikhail A.
    Emelianov, Dmitrii A.
    [J]. JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2022, 147 (06) : 4099 - 4112
  • [5] Heat Release Model for the Low Temperature Oxidation of Heavy Oils from Experimental Analyses and Numerical Simulations
    Jiang, Hang
    Yang, Junyu
    Huang, Jia
    Lv, Weifeng
    Tang, Junshi
    Xu, Qianghui
    Han, Yunchao
    Shi, Lin
    [J]. ENERGY & FUELS, 2019, 33 (05) : 3970 - 3978
  • [6] Estimation of the kinetic triplet for in-situ combustion of crude oil in the presence of limestone matrix
    Karimian, Milad
    Schaffie, Mahin
    Fazaelipoor, Mohammad Hassan
    [J]. FUEL, 2017, 209 : 203 - 210
  • [7] Low-temperature oxidation of Lloydminster heavy oil: Kinetic study and product sequence estimation
    Khansari, Zeinab
    Gates, Ian D.
    Mahinpey, Nader
    [J]. FUEL, 2014, 115 : 534 - 538
  • [8] Thermal characteristics and kinetics of crude oils and SARA fractions
    Kok, Mustafa Versan
    Gul, Kiymet Gizem
    [J]. THERMOCHIMICA ACTA, 2013, 569 : 66 - 70
  • [9] Kinetics of crude oil combustion
    Kök, MV
    Acar, C
    [J]. JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2006, 83 (02) : 445 - 449
  • [10] Kuppe GJM, 2008, J CAN PETROL TECHNOL, V47, P38