Oil Displacement Behavior of Polymer Flooding in Horizontal Well Patterns: Experimental and Numerical Simulation Approaches
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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.
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References
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Cite This Article
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 -
@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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