Oil Displacement Behavior of Polymer Flooding in Horizontal Well Patterns: Experimental and Numerical Simulation Approaches
Research Article  ·  Published: 09 May 2026
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Reservoir Science
Volume 2, Issue 3, 2026: 189-202
Research Article Open Access

Oil Displacement Behavior of Polymer Flooding in Horizontal Well Patterns: Experimental and Numerical Simulation Approaches

1 CNOOC EnerTech-Drilling & Production Co., Ltd., Tianjin 300452, China
2 CNPC Xibu Drilling Engineering Company Limited, Urumqi 830011, Xinjiang, China
3 China University of Geosciences, Beijing 100083, China
* Corresponding Author: Shaohao Huang, [email protected]
Volume 2, Issue 3

Article Information

Published in Reservoir Science
Pages 189-202

Abstract

Heavy oil reservoirs often retain substantial remaining oil after polymer flooding with vertical wells due to unfavorable oil-water mobility ratios and reservoir heterogeneity. Although horizontal wells can improve oil displacement efficiency by providing a larger contact area with the formation, systematic studies on the displacement behavior and key influencing factors of polymer flooding in opposed horizontal wells are still lacking. This study addresses this gap by combining two-dimensional physical simulation experiments with Eclipse numerical simulation to investigate the displacement dynamics and remaining oil distribution. The experimental results show that increasing well spacing prolongs the water-free oil production period and enhances final recovery. At the same time, the recovery at a crude oil viscosity of 50 mPa$\cdot$s is 15.31% higher than that at a crude oil viscosity of 300 mPa$\cdot$s at a well spacing of 14 cm, indicating that horizontal well polymer flooding is more effective in relatively low viscosity heavy oil reservoirs. Numerical simulation shows that the optimal distance is 390 m, beyond which the incremental recovery will become negligible. Both experimental and numerical simulation results confirm that polymer flooding in opposed horizontal wells can effectively alleviate water fingering and channeling, delay water breakthrough, and improve sweep efficiency. In the vertical direction, the remaining oil saturation of the middle layer increases from the inside out, with higher saturation in the upper part than in the lower part, and better recovery rates are observed at lower reservoir positions. By providing experimental validation, this study not only serves as a basis and verification for numerical simulations, but also offers scientific insight and engineering guidance for optimizing polymer flooding strategies in unconventional and mature horizontal-well reservoirs.

Graphical Abstract

Oil Displacement Behavior of Polymer Flooding in Horizontal Well Patterns: Experimental and Numerical Simulation Approaches

Keywords

horizontal well polymer flooding heavy oil reservoir numerical simulation recovery rates

Data Availability Statement

Data will be made available on request.

Funding

This work was supported by the Fundamental Research Funds for National Research Council of Science and Technology Major Projects, and the Fundamental Research Funds for the Central Universities.

Conflicts of Interest

Shaohao Huang, Zhibin Li, Xuefeng Song, and Bing Xu are affiliated with the CNOOC EnerTech-Drilling & Production Co., Ltd., Tianjin 300452, China; Chen Zhang is affiliated with the CNPC Xibu Drilling Engineering Company Limited, Urumqi 830011, Xinjiang, China. The authors declare that these affiliations had no influence on the study design, data collection, analysis, interpretation, or the decision to publish, and that no other competing interests exist.

AI Use Statement

The authors declare that no generative AI was used in the preparation of this manuscript.

Ethical Approval and Consent to Participate

Not applicable.

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Cited By (3)

  1. Qiang Li, Fuling Wang, Jingjuan Wu, Qingchao Li, Gan Zhang. Multivariate Coupling Model and Reservoir Characteristics of Enhanced Geothermal Reservoirs. Energies, 2026 , 19 (13).
    [CrossRef]
  2. Peng Xiao, Yiyi Yang, Zhenye Xu, Xudong Wang, Xin Zhang, Zhaoxu Wang, Tao Cao, Ren-Shi Nie. Pressure-Transient Diagnosis of Fault-Related Flow Baffling in Long-Horizontal-Well Reservoir Systems: A High-Permeability Fault-Block Case Study. Processes, 2026 , 14 (14).
    [CrossRef]
  3. Azizollah Khormali, Soroush Ahmadi. Hybrid nano-chemical enhanced oil recovery processes in oil reservoirs: A critical review. Results in Engineering, 2026 , 32 .
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* Citation data provided by Crossref Cited-by.

Cite This Article

APA Style
Huang, S., Li, Z., Song, X., Ju, B., Zhang, C., & Xu, B. (2026). Oil Displacement Behavior of Polymer Flooding in Horizontal Well Patterns: Experimental and Numerical Simulation Approaches. Reservoir Science, 2(3), 189-202. https://doi.org/10.62762/RS.2026.142664
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Compatible with EndNote, Zotero, Mendeley, and other reference managers
TY  - JOUR
AU  - Huang, Shaohao
AU  - Li, Zhibin
AU  - Song, Xuefeng
AU  - Ju, Binshan
AU  - Zhang, Chen
AU  - Xu, Bing
PY  - 2026
DA  - 2026/05/09
TI  - Oil Displacement Behavior of Polymer Flooding in Horizontal Well Patterns: Experimental and Numerical Simulation Approaches
JO  - Reservoir Science
T2  - Reservoir Science
JF  - Reservoir Science
VL  - 2
IS  - 3
SP  - 189
EP  - 202
DO  - 10.62762/RS.2026.142664
UR  - https://www.icck.org/article/abs/RS.2026.142664
KW  - horizontal well
KW  - polymer flooding
KW  - heavy oil reservoir
KW  - numerical simulation
KW  - recovery rates
AB  - Heavy oil reservoirs often retain substantial remaining oil after polymer flooding with vertical wells due to unfavorable oil-water mobility ratios and reservoir heterogeneity. Although horizontal wells can improve oil displacement efficiency by providing a larger contact area with the formation, systematic studies on the displacement behavior and key influencing factors of polymer flooding in opposed horizontal wells are still lacking. This study addresses this gap by combining two-dimensional physical simulation experiments with Eclipse numerical simulation to investigate the displacement dynamics and remaining oil distribution. The experimental results show that increasing well spacing prolongs the water-free oil production period and enhances final recovery. At the same time, the recovery at a crude oil viscosity of 50 mPa$\cdot$s is 15.31% higher than that at a crude oil viscosity of 300 mPa$\cdot$s at a well spacing of 14 cm, indicating that horizontal well polymer flooding is more effective in relatively low viscosity heavy oil reservoirs. Numerical simulation shows that the optimal distance is 390 m, beyond which the incremental recovery will become negligible. Both experimental and numerical simulation results confirm that polymer flooding in opposed horizontal wells can effectively alleviate water fingering and channeling, delay water breakthrough, and improve sweep efficiency. In the vertical direction, the remaining oil saturation of the middle layer increases from the inside out, with higher saturation in the upper part than in the lower part, and better recovery rates are observed at lower reservoir positions. By providing experimental validation, this study not only serves as a basis and verification for numerical simulations, but also offers scientific insight and engineering guidance for optimizing polymer flooding strategies in unconventional and mature horizontal-well reservoirs.
SN  - 3070-2356
PB  - Institute of Central Computation and Knowledge
LA  - English
ER  - 
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@article{Huang2026Oil,
  author = {Shaohao Huang and Zhibin Li and Xuefeng Song and Binshan Ju and Chen Zhang and Bing Xu},
  title = {Oil Displacement Behavior of Polymer Flooding in Horizontal Well Patterns: Experimental and Numerical Simulation Approaches},
  journal = {Reservoir Science},
  year = {2026},
  volume = {2},
  number = {3},
  pages = {189-202},
  doi = {10.62762/RS.2026.142664},
  url = {https://www.icck.org/article/abs/RS.2026.142664},
  abstract = {Heavy oil reservoirs often retain substantial remaining oil after polymer flooding with vertical wells due to unfavorable oil-water mobility ratios and reservoir heterogeneity. Although horizontal wells can improve oil displacement efficiency by providing a larger contact area with the formation, systematic studies on the displacement behavior and key influencing factors of polymer flooding in opposed horizontal wells are still lacking. This study addresses this gap by combining two-dimensional physical simulation experiments with Eclipse numerical simulation to investigate the displacement dynamics and remaining oil distribution. The experimental results show that increasing well spacing prolongs the water-free oil production period and enhances final recovery. At the same time, the recovery at a crude oil viscosity of 50 mPa\$\cdot\$s is 15.31\% higher than that at a crude oil viscosity of 300 mPa\$\cdot\$s at a well spacing of 14 cm, indicating that horizontal well polymer flooding is more effective in relatively low viscosity heavy oil reservoirs. Numerical simulation shows that the optimal distance is 390 m, beyond which the incremental recovery will become negligible. Both experimental and numerical simulation results confirm that polymer flooding in opposed horizontal wells can effectively alleviate water fingering and channeling, delay water breakthrough, and improve sweep efficiency. In the vertical direction, the remaining oil saturation of the middle layer increases from the inside out, with higher saturation in the upper part than in the lower part, and better recovery rates are observed at lower reservoir positions. By providing experimental validation, this study not only serves as a basis and verification for numerical simulations, but also offers scientific insight and engineering guidance for optimizing polymer flooding strategies in unconventional and mature horizontal-well reservoirs.},
  keywords = {horizontal well, polymer flooding, heavy oil reservoir, numerical simulation, recovery rates},
  issn = {3070-2356},
  publisher = {Institute of Central Computation and Knowledge}
}

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CC BY Copyright © 2026 by the Author(s). Published by Institute of Central Computation and Knowledge. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/), which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made.
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