Effects of high oil viscosity on oil-gas upward flow behavior in deviated pipes

被引:15
|
作者
Soto-Cortes, Gabriel [1 ]
Pereyra, Eduardo [2 ]
Sarica, Cem [2 ]
Rivera-Trejo, Fabian [3 ]
Torres, Carlos [4 ]
机构
[1] Autonomous Metropolitan Univ, Div Basic Sci & Engn, Campus Lerma,Av Garzas 10, Lerma De Villada 52005, Edo De Mexico, Mexico
[2] Univ Tulsa, McDougall Sch Petr Engn, 800 South Tucker Dr, Tulsa, OK 74104 USA
[3] Juarez Autonomous Univ Tabasco, Acad Div Engn & Architecture, Carretera Cunduacan Jalpa,Km 1, Cunduacan 86690, Tabasco, Mexico
[4] Univ Los Andes, Sch Mech Engn, Merida 5101, Venezuela
基金
芬兰科学院;
关键词
Heavy crude oil; Two-phase flow in inclined pipes; Positive frictional pressure drop; Flow pattern; Pressure gradient; Average liquid holdup; HIGH-LIQUID-VISCOSITY; 2-PHASE FLOW; SLUG FLOW; PATTERN TRANSITIONS; MECHANISTIC MODEL; PRESSURE-DROP; UNIFIED MODEL; LENGTH; PHASE; DISTRIBUTIONS;
D O I
10.1016/j.expthermflusci.2019.109896
中图分类号
O414.1 [热力学];
学科分类号
摘要
Two-phase flow models play a fundamental role in the design, improvement, and operation of oil and gas production systems. Considering very large high-viscosity oil reserves around the world, the understanding of two-phase flow systems, which involves high-viscosity-liquids (> 100 mPa s), becomes a relevant topic. The behavior of this kind of flows is expected to be significantly different as compared with low viscosity oils. In this work, we report a new experimental data on high viscosity oil-gas flow. A set of 170 upward flow experiments were carried out using a mixture of air and mineral oil (213 mPa s, 50.8 mm ID, 21.5 m long) for five different elevations: 45 degrees, 60 degrees, 70', 80 degrees, and 85 degrees. Superficial liquid and gas velocities were varied from 0.05 m/s to 0.7 m/s and from 0.5 m/s to 6 m/s, respectively. We measured and analyzed: flow pattern, pressure gradient, and average liquid holdup. These variables helped evaluate (a) the implications of a buoyancy-like term in the mechanical energy balance, and (b) the performance of two-phase flow models under the experimental conditions. As a result, we propose a practical relationship between the actual and homogenous densities through the slip and no-slip holdup fractions. This approach, supported by experimental evidence, shows that considering a buoyancy-like term is congruent with the physics that results from the interaction of gravitational and friction forces in inclined pipes. Moreover, the comparison of the present data with prediction models shows a performance which varies significantly depending on the predicted variable, the existing flow pattern as well as the inclination angle. In general, the model performance is good when the observed flow pattern is well predicted but fails when it is not, which typically falls into churn flow. This justifies the need to further understand churn flow and develop models consistent with the physics of transport.
引用
收藏
页数:19
相关论文
共 50 条
  • [21] Experimental investigation of interfacial wave in stratified low-viscosity-oil and water flow in horizontal and upward pipes
    Pan, Yi-Xin
    Zhang, Hong-Bing
    Hu, Yun-Jin
    Liu, Xing-Bin
    Wang, Min
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2021, 43 (06) : 738 - 753
  • [22] EXPERIMENTAL AND NUMERICAL INVESTIGATIONS ON HORIZONTAL OIL-GAS FLOW
    Lu Guang-yao
    Wang Jing
    Jia Zhi-hai
    JOURNAL OF HYDRODYNAMICS, 2007, 19 (06) : 683 - 689
  • [23] Experimental and Numerical Investigations on Horizontal Oil-Gas Flow
    Guang-yao Lu
    Jing Wang
    Zhi-hai Jia
    Journal of Hydrodynamics, 2007, 19 : 683 - 689
  • [24] The Analysis of Internal Flow Field in Oil-Gas Separator
    Wang Zhongyi
    Yuan Changlong
    Han Jia
    Yu Yunliang
    CEIS 2011, 2011, 15
  • [25] EXPERIMENTAL AND NUMERICAL INVESTIGATIONS ON HORIZONTAL OIL-GAS FLOW
    LU Guang-yao
    JournalofHydrodynamics, 2007, (06) : 683 - 689
  • [26] Energy Equation Derivation of the Oil-Gas Flow in Pipelines
    Duan, J. M.
    Wang, W.
    Zhang, Y.
    Zheng, L. J.
    Liu, H. S.
    Gong, J.
    OIL & GAS SCIENCE AND TECHNOLOGY-REVUE D IFP ENERGIES NOUVELLES, 2013, 68 (02): : 341 - 353
  • [27] Flow of oil-gas mixtures through unconsolidated sand
    Reid, LS
    Huntington, RL
    TRANSACTIONS OF THE AMERICAN INSTITUTE OF MINING AND METALLURGICAL ENGINEERS, 1938, 127 : 226 - 239
  • [28] Buckling behavior of pipes in oil and gas wells
    GAO Deli
    State Key Laboratory of Automotive Safety and Energy
    Department of Engineering Mechanics
    ProgressinNaturalScience, 2002, (02) : 48 - 52
  • [29] Buckling behavior of pipes in oil and gas wells
    Gao, DL
    Liu, FW
    Xu, BY
    PROGRESS IN NATURAL SCIENCE, 2002, 12 (02) : 126 - 130
  • [30] Study of the relationship between the trace element of oil-gas inclusion and oil-gas movement
    Chen, CR
    Huang, YY
    Li, JG
    He, W
    Wei, AH
    Wu, QH
    Wu, CX
    Li, KF
    HIGH ENERGY PHYSICS AND NUCLEAR PHYSICS-CHINESE EDITION, 2005, 29 : 51 - 55