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February 2, 2026Fractals0 citations

Fractal Model for Spontaneous Imbibition in Coal Considering Gas Adsorption-Induced Swelling Deformation

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ZLZhen LiuZWZhixiang WangHYHe Yang

Key Points

  • This study aims to understand how gas adsorption affects the expansion and deformation of coal during water injection.
  • Developed a coal porosity model for expansion and deformation.
  • Improved the spontaneous coal infiltration model using Hagen Poiseuille's law and fractal dimension.
  • Conducted experiments on spontaneous moisture infiltration in gas-containing coal at varying pressures.
  • Gas adsorption-induced coal expansion significantly impacts spontaneous imbibition.
  • Increased gas pressure leads to nonlinear enhancement in coal expansion strain.
  • Deformation reduces effective porosity, affecting pore compression.
  • Enhanced capillary forces increase the maximum imbibition height significantly.

Abstract

To investigate the effects of gas adsorption on coal expansion and deformation during the injection of water into gas-containing coal seams as well as their permeability and absorption characteristics, based on the mechanism of gas adsorption in coal, a coal porosity model for expansion and deformation was derived in this study. The existing spontaneous coal infiltration model was improved by combining Hagen Poiseuille's law and fractal dimension; the result is a fractal model of spontaneous infiltration considering gas adsorption conditions. Through the use of a self-developed experimental system for spontaneous infiltration of moisture into gas-containing coal, experiments were conducted at different pressures to verify the accuracy of the model. Research has shown that coal expansion deformation induced by gas adsorption has a significant impact on spontaneous imbibition. As the gas pressure gradient increases, the coal expansion strain exhibits nonlinear enhancement characteristics. This deformation reduces the effective porosity by compressing pores, and the evolution of the pore structure significantly increases the capillary force-dominated imbibition driving force, thereby significantly increasing the maximum imbibition height Le. This study provides important theoretical guidance for the study of spontaneous infiltration and absorption of gas-containing coal and for improving water injection technology for gas-containing.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/6980fff5c1c9540dea812dbahttps://doi.org/10.1142/s0218348x2650057x
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