Development and Application of Electrical-Joule-Heating Simulator for Heavy-Oil Reservoirs

被引:9
|
作者
Lashgari, Hamid R. [1 ]
Delshad, Mojdeh [1 ]
Sepehrnoori, Kamy [1 ,2 ,3 ]
de Rouffignac, Eric [4 ]
机构
[1] Univ Texas Austin, Dept Petr & Geosyst Engn, Austin, TX 78712 USA
[2] Univ Texas Austin, Petr Engn, Austin, TX 78712 USA
[3] Univ Texas Austin, Reservoir Simulat Joint Ind Project, Ctr Petr & Geosyst Engn, Austin, TX 78712 USA
[4] Univ Texas Austin, Austin, TX 78712 USA
来源
SPE JOURNAL | 2016年 / 21卷 / 01期
关键词
RECOVERY; SANDS; BITUMEN;
D O I
10.2118/170173-PA
中图分类号
TE [石油、天然气工业];
学科分类号
0820 ;
摘要
In the electrical-Joule-heating process, the reservoirs are heated in situ by dissipation of electrical energy to reduce the viscosity of oil. In principle, electrical current passes through the reservoir fluids mostly because of the electrical conductivity of saturated fluids such as saline water. The flow of electrical current through the reservoir raises the heat in the reservoir and thereby dramatically reduces the oil viscosity. In this process, electrical current can flow between electricalpotential sources (electrodes) in wells, and then electrical energy is dissipated to generate the heat. Therefore, the regions around the electrodes in (or around) the wells are extremely heated. Because the wells act as line sources for the electrical potential, greater heating takes place near the wellbore, causing possible vaporization of water in that region. Because steam has very-low electrical conductivity, it can reduce the efficiency of this process significantly. In this process electrical conductivity plays a very important role. To increase efficiency of this type of heating process, the presence of optimum saline-water saturation is an essential factor. To model the electrical Joule heating in the presence of multiphase- fluid flow, we use three Maxwell classical electromagnetism equations. These equations are simplified and assumed for low frequency to obtain the conservation of the electrical-current equation and Ohm's law. The conservation of electrical current and Ohm's law are implemented by use of a finite-difference method in a four-phase chemical-flooding reservoir simulator (UTCHEM 2011.7). The Joule-heating rate caused by dissipation of electrical energy is calculated and added to the energy equation as a source term. The formulation and implementation of electrical heating are validated against a reference analytical solution and verified with a reservoir simulator. A typical-reservoir model is built, and constant electrical potential with alternating current is applied to the model to study the efficiency of the electrical-heating process properly. The efficiency of this process is evaluated in the presence of water-saturated fractures and evaporation effect. Results illustrate that water saturation in the presence of fractures and electrical conductivity of saturated rock have an important effect on the Joule-heating process. The importance of the fractures saturated by saline water and operation of such processes below the boiling point are key findings in this paper to obtain high recovery in comparison with other conventional-thermal-recovery methods.
引用
收藏
页码:87 / 100
页数:14
相关论文
共 50 条
  • [31] COUPLED GEOMECHANICAL-THERMAL SIMULATION FOR DEFORMING HEAVY-OIL RESERVOIRS
    FUNG, LSK
    BUCHANAN, L
    WAN, RG
    JOURNAL OF CANADIAN PETROLEUM TECHNOLOGY, 1994, 33 (04): : 22 - 28
  • [32] RELATIVE PERMEABILITY DURING CYCLIC STEAM STIMULATION OF HEAVY-OIL RESERVOIRS
    DIETRICH, JK
    JOURNAL OF PETROLEUM TECHNOLOGY, 1981, 33 (10): : 1987 - 1989
  • [33] Pore-Level Investigation of Oil-Mobility Enhancement in Heavy-Oil Reservoirs
    Ortiz-Arango, J. D.
    Kantzas, A.
    JOURNAL OF CANADIAN PETROLEUM TECHNOLOGY, 2011, 50 (05): : 59 - 74
  • [34] Experimental studies on effects of temperature on oil and water relative permeability in heavy-oil reservoirs
    Yadong Qin
    Yongbin Wu
    Pengcheng Liu
    Fajun Zhao
    Zhe Yuan
    Scientific Reports, 8
  • [35] Evaluation of EOR methods for heavy-oil recovery in naturally fractured reservoirs
    Babadagli, T
    JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2003, 37 (1-2) : 25 - 37
  • [36] Microdisplacement Mechanism of Polymer Flooding and Distributional Characteristics of Remaining Oil in Heavy-Oil Reservoirs
    Fan, Meng
    Liu, Yikun
    Wang, Haidong
    Zhi, Jiqiang
    CHEMISTRY AND TECHNOLOGY OF FUELS AND OILS, 2021, 57 (02) : 358 - 367
  • [37] Experimental studies on effects of temperature on oil and water relative permeability in heavy-oil reservoirs
    Qin, Yadong
    Wu, Yongbin
    Liu, Pengcheng
    Zhao, Fajun
    Yuan, Zhe
    SCIENTIFIC REPORTS, 2018, 8
  • [38] Critical Oil Rate and Well Productivity in Cold Production From Heavy-Oil Reservoirs
    Guo, Boyun
    Gao, Deli
    Ai, Chi
    Qu, Jianfang
    SPE PRODUCTION & OPERATIONS, 2012, 27 (01): : 87 - 93
  • [39] Microdisplacement Mechanism of Polymer Flooding and Distributional Characteristics of Remaining Oil in Heavy-Oil Reservoirs
    Meng Fan
    Yikun Liu
    Haidong Wang
    Jiqiang Zhi
    Chemistry and Technology of Fuels and Oils, 2021, 57 : 358 - 367
  • [40] A study on a thermal compound chemical method for improving development efficiency of heavy-oil reservoirs with strong sensitivity
    Cao, Yanbin
    Yu, Tiantian
    Lin, Jisheng
    Liu, Dongqing
    He, Shaoqun
    Wang, Quan
    Xia, Daohong
    Shiyou Xuebao/Acta Petrolei Sinica, 2013, 34 (01): : 128 - 132