Hydraulic pulsation for enhanced oil recovery in high-water-cut sandstone reservoirs
Гидравлическая пульсация для повышения нефтеотдачи в песчаных месторождениях с высоким обводнением
2026-01-01
SCID: 54.1/69t38rn9
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amplitude and frequency optimizationcore-flooding experimentsfluid–solid coupling modelhigh-water-cut sandstone reservoirshydraulic pulsation
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Abstract (AI)
In high water-cut sandstone reservoirs, improving microscopic sweep efficiency is critical for enhancing oil recovery. Hydraulic pulsation generates pressure waves that induce pore dilation between injection and production wells, disrupting interfacial equilibrium at the pore scale. This study systematically optimizes key operational parameters—amplitude, frequency, and timing—to increase displacement efficiency. Core-flooding experiments establish quantitative relationships between these parameters and incremental oil recovery. The results identify an optimal frequency of 1.0 Hz for effective wave energy superposition and a critical amplitude threshold (approximately 2.0 ml·min−1 at laboratory scale), beyond which incremental recovery plateaus due to exacerbated channeling. This critical amplitude correlates with a capillary number criterion (Ca > 10−6), while the optimal frequency corresponds to a Womersley number of approximately 0.32. A simplified fluid–solid coupling model is developed to predict parameter effects. Field application under scaled conditions (0.025 Hz, 3 MPa amplitude) increased well-group oil production by 45.5%, validating the methodology. This work provides a theoretical and practical framework for optimizing hydraulic pulsation to enhance oil recovery in mature sandstone reservoirs.
Key Findings
1
A critical amplitude threshold (~2.0 ml·min−1 at laboratory scale) exists, beyond which incremental oil recovery plateaus due to increased channeling.
2
A simplified fluid–solid coupling model was developed to predict the effects of pulsation parameters on recovery.
3
An optimal frequency of 1.0 Hz (laboratory scale) produces effective wave energy superposition corresponding to a Womersley number of approximately 0.32.
4
Field application at scaled conditions (0.025 Hz, 3 MPa amplitude) increased well-group oil production by 45.5%, validating the approach.
5
Hydraulic pulsation improves microscopic sweep efficiency in high-water-cut sandstone reservoirs by generating pressure waves that induce pore dilation and disrupt interfacial equilibrium.
6
Systematic optimization of amplitude, frequency, and timing increases displacement efficiency, with core-flooding experiments quantifying parameter–recovery relationships.
7
The critical amplitude threshold correlates with a capillary number criterion of Ca > 10−6.
Research Object
Hydraulic pulsation applied to high-water-cut sandstone reservoirs
Research Subject
Optimization and effects of operational parameters (amplitude, frequency, timing) on microscopic sweep/displacement efficiency and incremental oil recovery, including laboratory thresholds (critical amplitude, capillary number, optimal frequency/Womersley number), fluid–solid coupling behavior, and field-scale production improvement
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2026-01-01
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