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A study on the effect of gas shale composition and pore structure on methane sorption

机译:气体页岩组成与孔隙结构对甲烷吸附作用的研究

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Ten moist, powdered European shale samples were analyzed for their sorption properties by volumetric method. The adsorption capacities were correlated to the shale organic types and maturity. The pore-size distribution obtained from low-pressure CO2 micropore adsorption was also correlated with the porosity and shale organic types. Furthermore, pore volume and average pore width were taken into consideration to determine the dominant parameters controlling adsorption. To identify the discrepancy between available and actual pore space for adsorption, helium and krypton gases were used for void volume estimation. Methane adsorption isotherms follow Langmuir Type I behavior and, in general, showed a positive trend with Total Organic Content (TOC) and Hg-porosity although some deviations were also observed. Low to moderate level of hysteresis between adsorption and desorption isotherms for some samples was visible, which may be attributed to the experimental uncertainty and existence of heterogeneous pores for shale-methane interaction. The low-pressure micropore adsorption analysis indicated dominance of nanopore and very fine micropores in the shale matrix structure along with associated microporosity of the clay materials. The observed "negative" adsortion or "decline" in adsorption isotherm are related to the mismatch of the available pore spaces for helium and methane. In general, He-calibrated isotherms showed higher levels of adsorption than the corresponding Kr-calibrated isotherms although the unit void volume for all samples follow a negative trend with the maximum methane capacity.
机译:通过体积法分析10次湿润的粉末欧式页岩样品。吸附能力与页岩有机型和成熟度相关。从低压CO 2微孔吸附获得的孔径分布也与孔隙率和页岩有机类型相关。此外,考虑到孔体积和平均孔宽度以确定控制吸附的主要参数。为了识别可用和实际孔隙空间的差异,用于吸附,氦气和氪气体用于空隙体积估计。甲烷吸附等温线遵循Langmuir I型行为,并且通常显示出具有总有机含量(TOC)和HG孔隙的正趋势,尽管也观察到一些偏差。可见一些样品的吸附和解吸等温度之间的低至中等程度的吸附和解吸等温度,这可能归因于实验性的不确定性和存在用于页岩 - 甲烷相互作用的异质孔隙。低压微孔吸附分析表明纳米孔和非常细微的微孔在页岩基质结构中的优势以及粘土材料的相关微孔。在吸附等温线中观察到的“阴性”腺或“下降”与氦和甲烷的可用孔隙空间的不匹配有关。通常,他校准的等温线显示出比相应的KR校准等温线更高水平的吸附量,尽管所有样品的单位空隙量遵循具有最大甲烷容量的负趋势。

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