Computational Fluid Dynamics Modeling and Analysis of Axial and Radial Temperature of Wellbore during Injection and Production Process

被引:0
|
作者
Zheng, Jie [1 ,2 ,3 ]
Hu, Zhihao [1 ]
Wang, Weixiao [4 ]
Dou, Yihua [1 ]
Li, Jiahui [1 ]
Yang, Xu [3 ]
Zhang, Yarong [2 ,3 ,5 ]
Cao, Yinping [1 ]
机构
[1] Xian ShiYou Univ, Sch Mech Engn, Xian, Peoples R China
[2] Northwestern Polytech Univ, Sch Power & Energy, Xian, Peoples R China
[3] Xian Special Equipment Inspect Inst, Xian, Peoples R China
[4] Beijing Gas Grp Tianjin Liquefied Nat Gas Co Ltd, Beijing, Peoples R China
[5] Xian Univ Architecture & Technol, Sch Sci, Xian, Peoples R China
来源
SPE JOURNAL | 2024年 / 29卷 / 05期
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
Boreholes - Computational fluid dynamics - Computer software - Fracturing fluids - Gases - Heat transfer - Oil field equipment - Oil wells - Tubing;
D O I
10.2118/219467-PA
中图分类号
TE [石油、天然气工业];
学科分类号
0820 ;
摘要
To solve problems such as additional tubing/casing load, casing deformation, and packer failure caused by changes in annular temperature during oil and gas reservoir fracturing and production, based on the well structure of oil and gas reservoirs and transition transient heat transfer mechanism, a four-field coupling simulation model of the temperature field in the main fluid domain of the tubing, the temperature field in the solid domain of the tubing, the temperature field in the annular fluid domain, and the temperature field in the solid domain of the casing is proposed. Considering the coupling of fluid temperature, pressure, and physical parameters, boundary conditions are established based on reservoir characteristics, wellbore heat transfer characteristics, and fracturing and production conditions, and are compiled into Fluent software for simulation through the user-defined function (UDF) method. The effects of the temperature and flow rate of injected fracturing fluid and produced oil and gas on the distribution of the wellbore temperature field and temperature gradient are studied. The research results show that by applying D14-1 and D5-5 gas wells to the model, the simulated temperature is in good agreement with the measured wellbore temperature, and the maximum errors of the simulated values of the two different wells are 6.4% and 4.3%, respectively. As the injection and production operation time increase, the heat transfer between the wellbore and the formation gradually stabilizes. At this time, the injection and production flow rate have little impact on the wellbore temperature field, while the injection and production temperature have a greater impact on the wellbore temperature field. The injection and production temperature will cause changes in annular temperature and temperature gradient, leading to an increase or decrease in pressure within a limited annular volume, resulting in local stress on the tubing and casing. The research results can provide a theoretical basis for the analysis of the temperature field and pressure field of the wellbore during fracturing and oil and gas production, ensuring the safety and stability of fracturing and production.
引用
收藏
页码:2399 / 2413
页数:15
相关论文
共 50 条
  • [1] Effects of the radial temperature gradient and axial conduction of drilling fluid on the wellbore temperature distribution
    Yang Mou
    Meng Ying-Feng
    Li Gao
    Deng Jian-Min
    Zhang Lin
    Tang Si-Hong
    ACTA PHYSICA SINICA, 2013, 62 (07)
  • [2] Capturing Radial Mixing in Axial Compressors With Computational Fluid Dynamics
    Cozzi, Lorenzo
    Rubechini, Filippo
    Giovannini, Matteo
    Marconcini, Michele
    Arnone, Andrea
    Schneider, Andrea
    Astrua, Pio
    JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 2019, 141 (03):
  • [3] Near-wellbore modeling of a horizontal well with Computational Fluid Dynamics
    Szanyi, Marton L.
    Hemmingsen, Casper S.
    Yan, Wei
    Walther, Jens H.
    Glimberg, Stefan L.
    JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2018, 160 : 119 - 128
  • [4] Determining initial formation temperature considering radial temperature gradient and axial thermal conduction of the wellbore fluid
    Yang, Mou
    Tang, Daqin
    Chen, Yuanhang
    Li, Gao
    Zhang, Xingguo
    Meng, Yingfeng
    APPLIED THERMAL ENGINEERING, 2019, 147 : 876 - 885
  • [5] Development of a Computational Fluid Dynamics Compositional Wellbore Simulator for Modeling of Asphaltene Deposition
    Fallahnejad, Gholamreza
    Rasaei, Mohammad Reza
    Bahramian, Alireza
    Ghazanfari, Mohammad Hossein
    ACS OMEGA, 2021, 6 (37): : 24196 - 24208
  • [6] Computational Fluid Dynamics Modeling: Application to Transport Phenomena During the Casting Process
    Zhang, Lifeng
    JOM, 2012, 64 (09) : 1059 - 1062
  • [7] Computational Fluid Dynamics Modeling: Application to Transport Phenomena During the Casting Process
    Lifeng Zhang
    JOM, 2012, 64 : 1059 - 1062
  • [8] Modeling transient wellbore temperature during diagnostic fracture injection tests
    Nojabaei, B.
    Hasan, A.R.
    Kabir, C.S.
    JPT, Journal of Petroleum Technology, 2015, 67 (02): : 109 - 110
  • [9] Computational Fluid Dynamics of Ammonia Synthesis in Axial-Radial Bed Reactor
    Tyranski, Mariusz
    Bujalski, Jakub Michal
    Orciuch, Wojciech
    Makowski, Lukasz
    ENERGIES, 2023, 16 (18)
  • [10] Computational fluid dynamics modeling and mass transfer study of an in situ gas production process
    Wei, Hui-Long
    Su, Yuanhai
    Pan, De-Tao
    Luo, Zheng-Hong
    AICHE JOURNAL, 2024, 70 (02)