Skip to main content

Numerical Simulation of Gas/Liquid Two-Phase Flow in a Large-Diameter Vertical Pipe

  • Conference paper
  • First Online:
Proceedings of the International Field Exploration and Development Conference 2021 (IFEDC 2021)

Part of the book series: Springer Series in Geomechanics and Geoengineering ((SSGG))

Included in the following conference series:

  • 79 Accesses

Abstract

Accurate knowledge of flow behaviors of gas/water two-phase flow in pipeline is crucial to production optimization, production string selection, production logging interpretation, down-hole metering, and artificial lift design and modeling. In this study, two-dimensional simulation model of a large-diameter vertical pipe was established by using the software of FLUENT 19.0, which with 125 mm I.D., and 10 m long. Based on the verification of grid independence and comparison of quantitative results of simulations with experimental tests, the effects of input water content and flow rates on flow patterns, phase distribution, holdup, and average velocity distribution along the pipeline were examined using a VoF approach. The results show a quantitative agreement between calculations and experimental data for the liquid holdup. Additionally, the flow pattern will change from bubble flow to cap flow and slug flow with the increase of input gas content when the flow rates of mixtures are unchanged, and it also will gradually transit from dispersed bubble flow to cap flow and slug flow with the increase of input flow rate when setting same input water contents. Furthermore, when the total flow rate less than 50 m3/d, the flow pattern of mixtures is stably bubble flow. In all simulation studies, the phase distribution of mixtures shows the same characteristics, i.e. the water holdup of the three section in the order of highest to lowest as follows: the top section of pipe, the bottom of pipe, and the whole section of pipe. While, the average velocity distribution of the mixture is affected by the input water content, and presents diversification in different ranges of water contents. When the input water contents in the range of 30% to 60%, the average velocity of the three section in the order of highest to lowest as follows: the top section of pipe, the whole of pipe, and the bottom section of pipe. While when the input water contents small than 30% or larger than 60%, the average velocity of the three section in the order of highest to lowest as follows: the bottom section of pipe, the whole of pipe, and the top section of pipe. The systematic analysis of flow characteristics for gas/liquid two-phase flow with low flow rate in a large-diameter pipe can lay a theoretical foundation for the study of logging data interpretative method of gas wells.

This is a preview of subscription content, log in via an institution to check access.

Access this chapter

Chapter
USD 29.95
Price excludes VAT (USA)
  • Available as PDF
  • Read on any device
  • Instant download
  • Own it forever
eBook
USD 259.00
Price excludes VAT (USA)
  • Available as EPUB and PDF
  • Read on any device
  • Instant download
  • Own it forever
Softcover Book
USD 329.99
Price excludes VAT (USA)
  • Compact, lightweight edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info
Hardcover Book
USD 329.99
Price excludes VAT (USA)
  • Durable hardcover edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info

Tax calculation will be finalised at checkout

Purchases are for personal use only

Institutional subscriptions

References

  1. Qiu, X.X., Dai, J.C., Chen, M., et al.: Numerical simulation of the flow characteristics in low-yield and liquid loading gas well based on VOF. Fault-Block Oil Gas Field 27(5), 619–623 (2020)

    Google Scholar 

  2. Song, H.W., Guo, H.M., Guo, S., et al.: Partial phase flow rate measurements for stratified oil-water flow in horizontal wells. Pet. Explor. Dev. 47(3), 573–582 (2020)

    Article  MathSciNet  Google Scholar 

  3. Hill, A.D.: A comparison of oil-water slip velocity models used for production log interpretation. J. Petrol. Sci. Eng. 8, 181–189 (1992)

    Article  Google Scholar 

  4. Guo, J.X., Yang, Y.Q., Zhang, S., et al.: Heavy oil-water flow patterns in a small diameter vertical pipe under high temperature/pressure conditions. J. Petrol. Sci. Eng. 171, 1350–1365 (2018)

    Article  Google Scholar 

  5. Zhang, Y.D., Ruan, L.F., Liu, D.H.: CFD simulation study of gas-liquid regimes in inclined wellbore. Adv. Mater. Res. 915–916, 126–130 (2014)

    Article  Google Scholar 

  6. Bian, X.H., Liu, J.F., Ye, T.M., et al.: Numerical simulation of oil-water two-phase flow pattern in large diameter and different inclined wells. Well Logging Technol. 40(4), 399–403 (2016)

    Google Scholar 

  7. Deendarlianto, Andrianto, M., Widyaparaga, A., et al.: CFD studies on the gas-liquid plug two-phase flow in a horizontal pipe. J. Petrol. Sci. Eng. 147, 779–787 (2016)

    Google Scholar 

  8. Xu, C.: Numerical simulation research on nearly horizontal small diameter oil-water two phase. Petrol. Tubular Goods Instrum. 5(2), 21–24 (2016)

    Google Scholar 

  9. Chang, F.Y., Ma, G.Y., An, L.J., et al.: The multiphase flow in inclined pipe. J. Liaoning Shihua Univ. 36(1), 34–36+64 (2016)

    Google Scholar 

  10. Guo, S.L., Yu, S.H., Fang, M.: Numerical simulation of gas-water two-phase flow patterns in-shale gas horizontal wells. Petrochem. Ind. Appl. 36(4), 18–23 (2017)

    Google Scholar 

  11. Pan, Y.-X., Zhang, H.-B., Xie, R.-H., Liu, X.-B., Wang, M.: Modeling of low viscosity oil-water annular flow in horizontal and slightly inclined pipes: experiments and CFD simulations. Korean J. Chem. Eng. 33(10), 2820–2829 (2016). https://doi.org/10.1007/s11814-016-0188-1

    Article  Google Scholar 

  12. Pineda-Pérez, H., Kim, T., Pereyra, E., et al.: CFD modeling of air and highly viscous liquid two-phase slug flow in horizontal pipes. Chem. Eng. Res. Des. 136, 638–653 (2018)

    Article  Google Scholar 

  13. Pico, P., Valdes, J.P., Ratkovich, N.R., et al.: Analysis of the drift flux in two-phase gas-liquid slug-flow along horizontal and inclined pipelines through experimental (Non)-Newtonian and CFD Newtonian approaches. J. Fluid Flow Heat Mass Transfer 5, 53–70 (2018)

    Google Scholar 

  14. Valdés, J.P., Pico, P., Pereyra, E., et al.: Evaluation of drift-velocity closure relationships for highly viscous liquid-air slug flow in horizontal pipes through 3D CFD modelling. Chem. Eng. Sci. 217, 115537 (2020)

    Google Scholar 

  15. Sorgun, M., Osgouei, R.E., Ozbayoglu, M.E., et al.: Gas-liquid flow through horizontal eccentric annuli: CFD and experiments compared. In: Proceedings of ASME-JSME-KSME Joint Fluids Engineering Conference, Hamamatsu, Shizuoka, Japan, 24–29 July 2011

    Google Scholar 

  16. Frank, T.: Numerical simulation of slug flow regime for an air-water two-phase flow in horizontal pipes. In: The 11th International Topical Meeting on Nuclear Reactor Thermal-Hydraulics, Avignon, France, 2–6 October 2005

    Google Scholar 

  17. Walvekar, R.G., Choong, T.S.Y., Hussain, S.A., et al.: Numerical study of dispersed oil–water turbulent flow in horizontal tube. J. Petrol. Sci. Eng. 65(3–4), 123–128 (2009)

    Google Scholar 

  18. Kou, J., Gong, S., Yang, W.: Numerical simulation research on flow pattern of gas-water two-phase flow in horizontal pipeline. In: Second International Conference on Mechanic Automation & Control Engineering, pp. 484–487. IEEE (2011)

    Google Scholar 

  19. Dabirian, R., Mansouri, A., Mohan, R., et al.: CFD simulation of turbulent flow structure in stratified gas/liquid flow and validation with experimental data. In: SPE Technical Conference & Exhibition. Houston, Texas, USA, 28–30 September 2015, SPE-174964-MS (2015)

    Google Scholar 

  20. Paula, P.D., Valdes, J.P., Ratkovich, N.: Analysis of the drift flux in two-phase gas-liquid slug-flow along horizontal and inclined pipelines through experimental (Non)-Newtonian and CFD Newtonian approaches. J. Fluid Flow Heat Mass Transfer 5, 53–70 (2018)

    Google Scholar 

  21. Zhao, M.H.: Study on interpreting methods of performance monitoring of production in horizontal experimental wells, Doctoral dissertation, Yangtze University (2005)

    Google Scholar 

Download references

Acknowledgments

The project is supported by the National Natural Science Foundation of China (Number 41804141), and the Postdoctoral Science Foundation of China (Number 2018M643525).

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Xiang-jun Liu .

Editor information

Editors and Affiliations

Rights and permissions

Reprints and permissions

Copyright information

© 2022 The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd.

About this paper

Check for updates. Verify currency and authenticity via CrossMark

Cite this paper

Qin, H., Liu, Xj., Chen, M., Qin, Mj., Wang, Zt. (2022). Numerical Simulation of Gas/Liquid Two-Phase Flow in a Large-Diameter Vertical Pipe. In: Lin, J. (eds) Proceedings of the International Field Exploration and Development Conference 2021. IFEDC 2021. Springer Series in Geomechanics and Geoengineering. Springer, Singapore. https://doi.org/10.1007/978-981-19-2149-0_232

Download citation

Publish with us

Policies and ethics