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May 26, 2026Energies0 citationsOpen Access

Numerical Simulation of Polymer Microsphere Flooding for In-Depth Profile Control

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XXXiankang XinZXZhang XuanSLSaijun Liu

Key Points

  • This research aims to develop a mathematical model for polymer microsphere flooding to enhance oil recovery.
  • Developed a three-phase, five-component model based on the black-oil framework.
  • Utilized a fully implicit finite-difference scheme for numerical solutions.
  • Validated the model with numerical tests and a field-scale application.
  • The model showed an agreement rate of approximately 85% with experimental data.
  • Polymer microsphere flooding improved recovery factor by 3.49 percentage points compared to conventional methods.
  • Reduced maximum water cut by about 9.34 percentage points, increasing average oil production rate by 7.5 m3.

Abstract

Polymer microsphere flooding is an effective enhanced oil recovery (EOR) technology. Its primary mechanism is characterized by a dynamic cycle of “migration, plugging, breakthrough, and remigration”, which enables effective in-depth profile control and selective plugging. However, constructing accurate mathematical models and obtaining stable numerical solutions for this process remain challenging. Based on the black-oil framework, a three-phase, five-component mathematical model is developed for water-microsphere dispersed system, including oil, gas, water phases and two microsphere components (pre-swollen and post-swollen), and accounting for swelling kinetics, adsorption, and water phase permeability reduction. The model is numerically solved using a fully implicit finite-difference scheme, and validated by numerical tests and a field-scale application. The numerical simulation results demonstrated an overall agreement rate of approximately 85% with experimental data. Mechanistic comparisons indicated that polymer microsphere flooding significantly improves sweep efficiency and oil recovery. Field-scale application further showed that polymer microsphere flooding, compared with conventional water flooding, increases the recovery factor by 3.49 percentage points, reduces the maximum water cut by about 9.34 percentage points, and raises the average daily oil production rate over the entire development period by 7.5 m3. The proposed model can provide theoretical basis for the field application of polymer microsphere flooding for in-depth profile control.

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Cite This Study

Xin et al. (2026) studied this question.

synapsesocial.com/papers/6a1539ccb5d9c58d83e8ce0dhttps://doi.org/10.3390/en19112523
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