Abstract:
Gas extraction is the primary technical measure for coal mine gas disaster prevention. Water content difference significantly affects gas desorption-diffusion behavior and carbon isotope fractionation process, while existing studies lack a systematic understanding of the carbon isotope evolution law and internal mechanism of gas under different water content conditions. Based on gas geochemistry and isotope fractionation theory, this study takes the C
7+8 coal seam of Pingqing Coal Mine in Yunnan as the research object, and systematically explores the evolution law and influencing mechanism of gas carbon isotope (
δ13C) under normal pressure desorption and crushing release conditions. The results show that, during normal pressure desorption, the gas desorption volume ratio presents a two-stage feature of “rapid growth followed by stable growth”; the
δ13C values of CH
4, CO
2, and C
2H
6 all become heavier in a negative exponential trend with desorption time and increase linearly with the desorption volume ratio, with CH
4 showing the most significant fractionation effect and C
2H
6 the weakest. Under crushing release conditions, the desorption volume ratio of coal samples with different water contents increases steadily; the
δ13C value of CH
4 becomes heavier exponentially with desorption time (higher water content leads to heavier isotope value) and maintains a linear positive correlation with the desorption volume ratio. The core mechanism of carbon isotope fractionation is that the weaker polarity of
12C—H bonds than
13C—H bonds causes the preferential desorption of
12CH
4, while desorption dynamics, molecular forces, and methane water solubility jointly intensify this process. The research provides a theoretical basis and technical support for revealing the micro-mechanism of gas extraction controlled by water content and optimizing evaluation methods of gas extraction effect.