Numerical-Simulation Investigation of the Effect of Heavy-Oil Viscosity on the Performance of Hydrocarbon Additives in SAGD

被引:0
|
作者
Mohebati, M. Hosseininejad [1 ]
Maini, B. B. [1 ]
Harding, T. G.
机构
[1] Univ Calgary, Dept Chem & Petr Engn, Schulich Sch Engn, Calgary, AB T2N 1N4, Canada
关键词
ASSISTED GRAVITY DRAINAGE; STEAM; BEHAVIOR;
D O I
暂无
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
Heavy oil and bitumen are expected to become increasingly important sources of fuel in the coming decades. There are extensive deposits in Alberta that could be a principal source of fuel in the coming century. The Athabasca oil sands, the largest petroleum accumulation in the world: the Cold Lake oil deposit; and the Lloydminster reservoir are all major Canadian oil-sands deposits. Steam-assisted gravity drainage (SAGD), which has shown considerable promise in all three of these major deposits, remains an expensive technique and requires large energy input. The energy intensity of SAGD and the environmental concerns make it imperative to find new oil-extraction technologies. Coinjecting hydrocarbon additives with steam offers the potential of lower energy and water consumption and reduced greenhouse-gas emission by improving the oil rates and recoveries. In a previous paper by the same authors (Hosseininejad Mohebati et al. 2010), we showed that the selection of a suitable hydrocarbon additive and the effectiveness of this hybrid process are strongly dependent on the operating conditions, reservoir-fluid composition, the heavy-oil viscosity, and the petrophysical properties of the reservoir. Among these factors, the heavy-oil viscosity, which is the main difference between these three reservoirs, could be a very important parameter in the performance of this hybrid process. Therefore, it is necessary to optimize the hydrocarbon additives to SAGD for these three oil-sand deposits separately. Extensive numerical studies in a 3D model by means of a fully implicit thermal simulator were conducted to evaluate the efficiency of each hydrocarbon additive with different heavy-oil viscosities (resembling those of Athabasca bitumen, Cold Lake heavy oil, and Lloydminster heavy oil). Varying mole percents of hexane, butane, and methane were coinjected with steam to each reservoir with different heavy-oil viscosity. The optimum amount of hydrocarbon injection was reported in each case. This culminated in a novel method for selecting the most advantageous hydrocarbon additive and its optimum concentration considering the heavy-oil viscosity.
引用
收藏
页码:165 / 181
页数:17
相关论文
共 50 条
  • [21] Numerical simulation optimization of injection parameters by viscosity reducer flooding in Gaoqing heavy oil reservoir
    Zhang Y.
    Mao Z.
    Lü C.
    Lun Z.
    Zhao S.
    Wang Y.
    He Y.
    Qi Y.
    Zhongguo Shiyou Daxue Xuebao (Ziran Kexue Ban)/Journal of China University of Petroleum (Edition of Natural Science), 2023, 47 (04): : 145 - 150
  • [22] Experimental study and numerical simulation of heavy oil viscosity reduction device based on jet cavitation
    He, Xu
    Liu, Hongmei
    Liu, Xuedong
    Jiang, Wei
    Zheng, Weiwen
    Zhang, Honghong
    Lv, Kaixin
    Chen, Hui
    PETROLEUM SCIENCE AND TECHNOLOGY, 2024, 42 (25) : 4745 - 4767
  • [23] The Effect of Oil Viscosity, Permeability, and Residual Oil Saturation on the Performance of Alkaline Flooding in the Recovery of Heavy Oil
    Pei, H.
    Zhang, G.
    Ge, J.
    Jin, L.
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2012, 34 (5-8) : 702 - 710
  • [24] Numerical Modeling of Heavy-Oil Recovery Using Electromagnetic Radiation/Hydraulic Fracturing Considering Thermal Expansion Effect
    Davletbaev, A.
    Kovaleva, L.
    Zainulin, A.
    Babadagli, T.
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2018, 140 (06):
  • [25] Investigation of amplification process of heavy oil viscosity reduction device based on jet cavitation using lab experimental and numerical simulation method
    Liu, Xuedong
    Jiang, Wei
    Cui, Shuqi
    Liu, Wenming
    Gu, Yutong
    Peng, Tao
    Zhu, Zirui
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2021,
  • [26] Generation of high-viscosity heavy oil droplets: Insights from image analysis and numerical simulation
    Huang, Yaohua
    Zhu, Huatong
    Peng, Dongyue
    Liao, Zhixin
    Lu, Hao
    Yang, Qiang
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2025, 211
  • [27] Multiphysics Field Coupled to a Numerical Simulation Study on Heavy Oil Reservoir Development via Electromagnetic Heating in a SAGD-like Process
    Yu, Jifei
    Liu, Wenchao
    Yang, Yang
    Sun, Mingkai
    Cao, Yanfeng
    Meng, Zicheng
    ENERGIES, 2024, 17 (20)
  • [28] Numerical Simulation Investigation on Foamy Oil Behavior for a System of Heavy Oil-Mixture Solvent in Porous Media
    Lu, Xinqian
    Lin, Zeyu
    Zhou, Xiang
    Zeng, Fanhua
    JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 2021, 143 (10):
  • [29] Numerical Simulation of Oil Film State and Mechanical Performance of Heavy Hydrostatic Thrust Bearings
    Hong, Yaoyao
    Du, Lijun
    Qi, Shemiao
    2013 INTERNATIONAL CONFERENCE ON MACHINERY, MATERIALS SCIENCE AND ENERGY ENGINEERING, 2013, 318 : 148 - 152
  • [30] Simulation Study for the Effect of Oil Viscosity on Performance of Full Metal Single Screw Pump
    Wu, Jun Fei
    Wei, Xiao
    Yang, Xue Zheng
    Yu, Ying
    ADVANCED POLYMER PROCESSING III, 2013, 561 : 362 - +