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September 5, 2025Processes4 citationsOpen Access

Stability and Foam Performance Optimization of CO2-Soluble Foaming Agents: Influencing Factors and Mechanistic Analysis

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WSWenjing SunWYWenlu YangZYZian Yang

Key Points

  • Optimal foam performance is achieved with nonionic surfactant E-1312 in mildly alkaline conditions, enhancing foam stability.
  • Foam performance saturation occurs at around 0.5% concentration, while elevated temperature significantly reduces foam lifetime.
  • High pressure supports foam stability, and adding nano-sized stabilizers strengthens interfacial properties of liquid films.
  • Findings expand understanding of CO2-soluble foaming agent mechanisms in porous media and inform molecular design strategies.

Abstract

This study systematically analyzes the influencing factors and optimization strategies of foam stability and performance for CO2-soluble foaming agents in high-temperature and high-pressure (HTHP) complex reservoir environments. By constructing a HTHP experimental system and utilizing dynamic foam testing, interfacial tension analysis, and microscopic observation of liquid films, the effects of chemical factors (e.g., pH, foaming agent concentration, stabilizer synergy) and physical factors (e.g., temperature, pressure) on foam behavior are investigated. The results show that the nonionic surfactant E-1312 exhibits optimal foam performance in neutral to mildly alkaline environments. The foam performance tends to saturate at around 0.5% concentration. High pressure enhances the foam stability, whereas elevated temperature significantly reduces the foam lifetime. Moreover, the addition of nano-sized foam stabilizers such as silica (SiO2) can significantly delay liquid film drainage and strengthen interfacial mechanical properties, thereby improving foam durability. This study further reveals the key mechanisms of CO2-soluble foaming agents in terms of interfacial behavior, liquid film evolution, and foam formation in porous media, providing theoretical guidance and optimization pathways for the molecular design and field application of CO2 foam flooding technology.

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Cite This Study

Sun et al. (2025) studied this question.

synapsesocial.com/papers/68bb4d196d6d5674bcd009a2https://doi.org/10.3390/pr13092784
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