Organic–Inorganic nanocomposite microspheres with enhanced mechanical stability for deep reservoir profile control

Polymer gel microspheres are promising agents for in-depth profile control in heterogeneous reservoirs, but conventional polymer microspheres (CPMs) are susceptible to mechanical damage during injection and repeated extrusion through pore throats, resulting in poor long-term plugging stability. Herein, we report shear-resistant organic–inorganic nanocomposite microspheres (NCMSs) prepared by inverse emulsion polymerization using a long-chain hydrophobic associative monomer and cetyltrimethylammonium bromide-modified montmorillonite. Reversible hydrophobic associations and rigid CTAB-MMT nanosheets provide complementary mechanisms for stress dissipation and structural reinforcement, respectively, thereby improving microsphere stability while preserving pore-throat deformability. NCMSs-0.5 retained 97.30 % of their initial D50 after five consecutive passages through a 12 μm micropore plate and exhibited good particle-size stability under elevated-temperature, high-salinity, and repeated pore-throat deformation conditions. After 180 days of aging, their apparent pressure-bearing strength remained 11.31 MPa, approximately 4.3 times that of CPMs. NCMSs achieved plugging efficiencies of 92.59–94.31 % and increased the liquid-production fraction of the low-permeability core from 13.83 % to 47.14 %, with its final oil recovery reaching 23.61 % compared with 14.47 % for CPMs. Microfluidic visualization further revealed deformation-assisted pore-throat passage and bridging retention. This work provides an effective organic–inorganic network design for durable deep profile control and enhanced oil recovery in heterogeneous reservoirs.

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Publication Details

Journal
Fuel
Published
2026-09-21
DOI
https://doi.org/10.1016/j.fuel.2026.141433
Primary Topic
Polymer Nanocomposites and Properties
Type
article
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article

Organic–Inorganic nanocomposite microspheres with enhanced mechanical stability for deep reservoir profile control

Jun Ni, Zhuanying Zhan, Chengjun Wang, Guoyan Ma et al.
Fuel
Polymer Nanocomposites and Properties
article

Organic–Inorganic nanocomposite microspheres with enhanced mechanical stability for deep reservoir profile control

Jun Ni, Zhuanying Zhan, Chengjun Wang, Guoyan Ma, Xiaorong Wang, Yaru Zhang
article en

Abstract

Polymer gel microspheres are promising agents for in-depth profile control in heterogeneous reservoirs, but conventional polymer microspheres (CPMs) are susceptible to mechanical damage during injection and repeated extrusion through pore throats, resulting in poor long-term plugging stability. Herein, we report shear-resistant organic–inorganic nanocomposite microspheres (NCMSs) prepared by inverse emulsion polymerization using a long-chain hydrophobic associative monomer and cetyltrimethylammonium bromide-modified montmorillonite. Reversible hydrophobic associations and rigid CTAB-MMT nanosheets provide complementary mechanisms for stress dissipation and structural reinforcement, respectively, thereby improving microsphere stability while preserving pore-throat deformability. NCMSs-0.5 retained 97.30 % of their initial D50 after five consecutive passages through a 12 μm micropore plate and exhibited good particle-size stability under elevated-temperature, high-salinity, and repeated pore-throat deformation conditions. After 180 days of aging, their apparent pressure-bearing strength remained 11.31 MPa, approximately 4.3 times that of CPMs. NCMSs achieved plugging efficiencies of 92.59–94.31 % and increased the liquid-production fraction of the low-permeability core from 13.83 % to 47.14 %, with its final oil recovery reaching 23.61 % compared with 14.47 % for CPMs. Microfluidic visualization further revealed deformation-assisted pore-throat passage and bridging retention. This work provides an effective organic–inorganic network design for durable deep profile control and enhanced oil recovery in heterogeneous reservoirs.

FuelVol. 430
Xi'an Shiyou University (CN), University of Petroleum (ID), Shaanxi Research Design Institute of Petroleum and Chemical Industry (CN), Shaanxi Yanchang Petroleum (China) (CN)
Openalex Percentile: Top 23%
Polymer Nanocomposites and Properties
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