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May 6, 2026Processes0 citationsOpen Access

Mechanisms and Performance of Nanoemulsion-Induced Pressure Reduction and Enhanced Injection in Ultra-Low Permeability Reservoirs

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LZLijun ZhengCYChanghao YanHHHong He

Key Points

  • This research aims to evaluate the mechanisms and performance of nanoemulsion in reducing pressure in ultra-low permeability reservoirs.
  • Injected nanoemulsion to reduce surface interfacial tension and alter wettability.
  • Conducted core displacement experiments to assess performance under varying conditions.
  • Characterized nanoemulsion properties like particle size distribution and hydrophilicity using a scanning electron microscope.
  • The nanoemulsion reduced oil-water interfacial tension to approximately 1 mN·m−1.
  • Improved hydrophilicity was observed at concentrations of 0.1% to 0.5%, affecting wettability.
  • Achieved a maximum depressurization rate of 16.78% with optimal injection parameters.

Abstract

To solve the problems of high injection pressure and low water injection in an ultra-low-permeability reservoir, nanoemulsion was injected to reduce the surface interfacial tension, change the wettability, and achieve the purpose of depressurization. In this paper, the surface and interfacial tension, wettability properties, and particle size distribution characterization of nanoemulsion were determined, and the performance of nanoemulsion was evaluated by laboratory experiments such as core displacement. At the same time, the depressurize and augmented injection mechanism of the nanoemulsion was studied through a scanning electron microscope. The experiment shows that the nanoemulsion system has good compatibility with brine. With the increase in temperature, the surface and interfacial tension does not change, and there is no precipitation. And the system can reduce the oil–water interfacial tension to about 1 mN·m−1 under the best conditions. By measuring the wettability angle of nanoemulsion at the concentration of 0.1% to 0.5%, which can adjust the wettability of the rock surface, the hydrophilicity is weakened. The depressurization performance of nanoemulsion under different injection rates, concentrations, and slug sizes was also compared through core displacement experiments, to provide reasonable experimental support for field operations. In the most reasonable case, the depressurization rate after using nanoemulsion can reach 16.78%.

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Cite This Study

Zheng et al. (2026) studied this question.

synapsesocial.com/papers/69fa8e8904f884e66b530e05https://doi.org/10.3390/pr14091463
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