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Microfluidic Devices for Characterizing Pore-scale Event Processes in Porous Media for Oil Recovery Applications
Published on: January 16, 2018
Research on the Mechanism and Characteristics of Gel-Microbial Composite Oil Displacement in Hypertonic Heavy Oil
Baolei Liu1,2, Xiang Li1, Hongbo Wang3
1School of Petroleum Engineering, Yangtze University, Wuhan 430100, China.
Abstract:
To address the limitations of traditional chemical flooding-such as high cost, environmental impact, and formation damage-and the challenges of standalone microbial flooding-including preferential channeling, microbial loss, and limited sweep efficiency-this study develops a novel composite system for a high-permeability heavy oil reservoir. The system integrates a 3% scleroglucan + 1% phenolic resin gel (ICRG) with Bacillus licheniformis (ZY-1) and a surfactant. Core flooding and two-dimensional physical simulation experiments reveal a synergistic mechanism: The robust and biocompatible ICRG gel effectively plugs dominant flow paths, increasing displacement pressure fourfold to divert subsequent fluids. The injected strain ZY-1 then metabolizes hydrocarbons, producing biosurfactants that reduce oil-water interfacial tension by 61.9% and crude oil viscosity by 65%, thereby enhancing oil mobility. This combined approach of conformance control and enhanced oil displacement resulted in a significant increase in ultimate oil recovery, achieving 15% and 20% in one-dimensional and two-dimensional models, respectively, demonstrating its substantial potential for improving heavy oil production.
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