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Self-growing biomimetic functional hydrogel particles for conformance control in tight reservoir fracture network.

Authors :
Ding, Xingxing
You, Qing
Dai, Caili
Sun, Yongpeng
Yi, Ping
Zhao, Guang
Liu, Jiawei
Ding, Fei
Xiao, Liangfei
Huang, Bin
Source :
Journal of Molecular Liquids. Oct2024, Vol. 411, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

[Display omitted] • Self-growing biomimetic functional hydrogel particles (SG-BFHPs) developed for Conformance Control. • The SG-BFHPs exhibited higher Frr (10.7–11.8) and better scour resistance. • AFM experiments show that SG-BFHPs has stronger adhesion between particles or rock surface. • SG-BFHPs distributed in irregular structure in fractures and adsorbed on the wall, which can adjust fracture channel. Hydraulic fracturing is gradually becoming a common approach for enhancing the oil production from tight reservoirs. Blocking agents such as soft particle systems are necessary as a means of conformance control to mitigate the side effect of reservoir heterogeneity due to hydraulic fracturing. In this work, a novel technique based on the mussel biomimetic concept is proposed to generate self-growing biomimetic functional hydrogel particles (SG-BFHPs). The fracture conformance control capacity of the products is evaluated, and the results show that multi-scale (0.5–3.0 mm) SG-BFHPs can cohere and grow at the reservoir condition, and the median agglomerated particle size can increase by 20–25 times. High flow resistance (Frr = 10.7–11.8), facilitated by the higher adhesion between the biomimetic particles and the pore walls, can be established by SG-BFHPs while maintaining a good injectivity. In the single-fracture model, the increased oil recovery by SG-BFHPs is about 12.2 %, and in the matrix-fracture model can be increased from 9.2 %–13.5 % to 25.8 %–28.8 %. AFM experiments show that SG-BFHPs have stronger adhesion between particles or rock surface than conventional hydrogel particles. After conformance control of SG-BFHPs, the particles are distributed in an irregular structure in the fractures and adsorbed on the fracture wall under the effect of inter-particle cohesion and adhesion, which can realize fracture channel adjustment by the particle self-growing. The SG-BFHPs studied in this paper provide valuable insights for the development of dispersed particle gel, which is of great significance in improving oil recovery in tight reservoirs. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01677322
Volume :
411
Database :
Academic Search Index
Journal :
Journal of Molecular Liquids
Publication Type :
Academic Journal
Accession number :
179498700
Full Text :
https://doi.org/10.1016/j.molliq.2024.125444