The pressure drops in horizontal wellbores, acceleration, wall friction, perforation roughness, and fluid mixing are analyzed in a partially perforated wellbore. It was demonstrated that the perforation inflow actually reduced the total pressure drop. The pressure drop due to perforation roughness was eliminated by the perforation inflow when the ratio of radial perforation flow to axial pipe flow rate reached a certain limit. Three dimensional numerical simulations on a partially perforated pipe with 150 perforations, geometrically similar with wellbore casing (12 SPF, and 60 phasing) were presented and analyzed. Numerical simulations by commercial code CFX were also conducted with Reynolds numbers ranging from 28,773 to 90,153 and influx flow rate ranging from 0 to 899 lit/hr to observe the flow through perforated pipe, measure pressure drops, friction factors and pressure loss coefficients. The acceleration pressure drop might be important compared with the frictional pressure drop. The numerically calculated results using k-ε model were compared with the experimental results. The numerical solutions agreed well with the experimental data.
Published in | American Journal of Energy Engineering (Volume 2, Issue 6) |
DOI | 10.11648/j.ajee.20140206.12 |
Page(s) | 133-140 |
Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
Copyright |
Copyright © The Author(s), 2014. Published by Science Publishing Group |
Pressure Drop, Perforation, Numerical, Radial Flow, Wellbore
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APA Style
Mohammed id Abdulwahhab Abdulwah, Sadoun Fahad Dakhil, I. N. Niranjan Kumar. (2014). Numerical Analysis of Fluid Flow Properties in a Partially Perforated Horizontal Wellbore. American Journal of Energy Engineering, 2(6), 133-140. https://doi.org/10.11648/j.ajee.20140206.12
ACS Style
Mohammed id Abdulwahhab Abdulwah; Sadoun Fahad Dakhil; I. N. Niranjan Kumar. Numerical Analysis of Fluid Flow Properties in a Partially Perforated Horizontal Wellbore. Am. J. Energy Eng. 2014, 2(6), 133-140. doi: 10.11648/j.ajee.20140206.12
AMA Style
Mohammed id Abdulwahhab Abdulwah, Sadoun Fahad Dakhil, I. N. Niranjan Kumar. Numerical Analysis of Fluid Flow Properties in a Partially Perforated Horizontal Wellbore. Am J Energy Eng. 2014;2(6):133-140. doi: 10.11648/j.ajee.20140206.12
@article{10.11648/j.ajee.20140206.12, author = {Mohammed id Abdulwahhab Abdulwah and Sadoun Fahad Dakhil and I. N. Niranjan Kumar}, title = {Numerical Analysis of Fluid Flow Properties in a Partially Perforated Horizontal Wellbore}, journal = {American Journal of Energy Engineering}, volume = {2}, number = {6}, pages = {133-140}, doi = {10.11648/j.ajee.20140206.12}, url = {https://doi.org/10.11648/j.ajee.20140206.12}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajee.20140206.12}, abstract = {The pressure drops in horizontal wellbores, acceleration, wall friction, perforation roughness, and fluid mixing are analyzed in a partially perforated wellbore. It was demonstrated that the perforation inflow actually reduced the total pressure drop. The pressure drop due to perforation roughness was eliminated by the perforation inflow when the ratio of radial perforation flow to axial pipe flow rate reached a certain limit. Three dimensional numerical simulations on a partially perforated pipe with 150 perforations, geometrically similar with wellbore casing (12 SPF, and 60 phasing) were presented and analyzed. Numerical simulations by commercial code CFX were also conducted with Reynolds numbers ranging from 28,773 to 90,153 and influx flow rate ranging from 0 to 899 lit/hr to observe the flow through perforated pipe, measure pressure drops, friction factors and pressure loss coefficients. The acceleration pressure drop might be important compared with the frictional pressure drop. The numerically calculated results using k-ε model were compared with the experimental results. The numerical solutions agreed well with the experimental data.}, year = {2014} }
TY - JOUR T1 - Numerical Analysis of Fluid Flow Properties in a Partially Perforated Horizontal Wellbore AU - Mohammed id Abdulwahhab Abdulwah AU - Sadoun Fahad Dakhil AU - I. N. Niranjan Kumar Y1 - 2014/12/23 PY - 2014 N1 - https://doi.org/10.11648/j.ajee.20140206.12 DO - 10.11648/j.ajee.20140206.12 T2 - American Journal of Energy Engineering JF - American Journal of Energy Engineering JO - American Journal of Energy Engineering SP - 133 EP - 140 PB - Science Publishing Group SN - 2329-163X UR - https://doi.org/10.11648/j.ajee.20140206.12 AB - The pressure drops in horizontal wellbores, acceleration, wall friction, perforation roughness, and fluid mixing are analyzed in a partially perforated wellbore. It was demonstrated that the perforation inflow actually reduced the total pressure drop. The pressure drop due to perforation roughness was eliminated by the perforation inflow when the ratio of radial perforation flow to axial pipe flow rate reached a certain limit. Three dimensional numerical simulations on a partially perforated pipe with 150 perforations, geometrically similar with wellbore casing (12 SPF, and 60 phasing) were presented and analyzed. Numerical simulations by commercial code CFX were also conducted with Reynolds numbers ranging from 28,773 to 90,153 and influx flow rate ranging from 0 to 899 lit/hr to observe the flow through perforated pipe, measure pressure drops, friction factors and pressure loss coefficients. The acceleration pressure drop might be important compared with the frictional pressure drop. The numerically calculated results using k-ε model were compared with the experimental results. The numerical solutions agreed well with the experimental data. VL - 2 IS - 6 ER -