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    复杂低渗煤层瓦斯抽采碳同位素演化规律与效果评价

    Carbon isotope evolution law and extraction effect evaluation of negative pressure extraction in complex low-permeability coal seams

    • 摘要: 针对煤矿瓦斯抽采效果精准评价手段单一的难题,以逢春煤矿M6-3、M7-2、M8、M11急倾斜近距离煤层群为研究对象,开展穿层钻孔联合抽采对比试验。系统采集不同抽采周期瓦斯气样进行气体组分与碳同位素测试,基于同位素化学组成质量守恒原则,建立四源瓦斯混合比计算模型,构建碳同位素演变模型并揭示分馏机理,最终建立碳同位素与瓦斯抽采率的定量关系。结果表明,随着抽采时间延长,瓦斯抽采浓度递减、抽采气量比值递增,δ13C(CH4)线性变重、δ13C(CO2)非线性变轻;分子键极性差异导致12CH413CO2优先解吸,是煤层瓦斯抽采过程中碳同位素分馏的核心机制;煤层群联合抽采中,M6-3煤层贡献比例大幅下降,M7-2与M8煤层占比上升,M11煤层占比稳定;各煤层瓦斯抽采率随CH4碳同位素变重呈递增趋势,表明碳同位素可作为煤层瓦斯抽采效果表征的微观指标。

       

      Abstract: To address the limited availability of methods for accurately evaluating coal mine gas extraction performance, a group of steeply inclined and closely spaced coal seams, including the M6-3, M7-2, M8, and M11 coal seams in Fengchun Coal Mine, was selected as the research object. Comparative experiments on combined gas extraction using cross-measure boreholes were conducted. Gas samples were systematically collected at different extraction stages to determine their gas compositions and carbon isotope characteristics. Based on the principle of mass conservation for chemical and isotopic compositions, a four-source gas mixing ratio calculation model was established. Furthermore, a carbon isotope evolution model was developed to clarify the underlying fractionation mechanism, and a quantitative relationship between carbon isotopes and the gas extraction rate was ultimately established. The results indicate that, with increasing extraction time, the gas extraction concentration gradually decreased, whereas the extracted gas volume ratio increased. Meanwhile, δ13C(CH4) exhibited a linear enrichment trend, while δ13C(CO2) showed nonlinear isotopic depletion. Differences in molecular bond polarity resulted in the preferential desorption of 12CH4 and 13CO2, which was identified as the primary mechanism governing carbon isotope fractionation during coal seam gas extraction. During the combined extraction of the coal seam group, the contribution of the M6-3 coal seam decreased substantially, whereas those of the M7-2 and M8 coal seams increased, and the contribution of the M11 coal seam remained relatively stable. The gas extraction rate of each coal seam increased with the progressive enrichment of the CH4 carbon isotope, indicating that carbon isotopes can serve as a microscale indicator for characterizing coal seam gas extraction performance.

       

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