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Fractal characteristics of pore structures in 13 coal specimens: Relationship among fractal dimension, pore structure parameter, and slurry ability of coal

机译:13个煤样孔隙结构的分形特征:分形维数,孔隙结构参数与煤成浆能力的关系

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The fractal characteristics of pore structures in 13 different coal specimens were investigated. Insights into the relationship among fractal dimension, pore structure parameter, and slurry ability of coal were provided. N-2 adsorption/desorption at 77 K was applied to analyze the pore structure of coal. Two fractal dimensions, D-1 and D-2, at relative pressures of 0 to 0.45 and 0.45 to 1, respectively, were calculated with the fractal Frenkel-Halsey-Hill model. Results reveal that the value of D-1 is mainly affected by the influence of meso- and macro-pores with an average pore size range of 10 nm to 220 nm on the specific surface area; therefore, Di can be utilized to quantitatively describe the surface roughness of these meso- and macro-pores in coal. Meanwhile, the value of D-2 is mainly related to the effects of fine mesopores with an average pore size range of 2 nm to 10 nm on the total pore volume; therefore, D-2 can be utilized to quantitatively describe the volumetric roughness of these mesopores in coal. Di has no apparent linear correlation with the pore structure parameters and maximum solid loading of coal, and D-2 has a positive linear correlation with the specific surface area and total pore volume of coal. The increase in specific surface area, total pore volume, and D-1 has negative effects on the slurry ability of coal. High-rank coals with high ash content and low volatile matter relatively have higher Di and lower D-2. Meanwhile, with increasing coal rank, D-2 has a decreased trend. The fine mesopores with an average pore size range of 2 nm to 10 nm in coal have direct effects on the pore structure parameters and D-2 of coal; thus, the slurry ability of coal may be improved if the number of these mesopores in coal is reduced by modification processes, such as microwave irradiation, hydrothermal treatment and so on. (C) 2016 Elsevier B.V. All rights reserved.
机译:研究了13种不同煤样的孔隙结构的分形特征。揭示了分形维数,孔隙结构参数和煤浆能力之间的关系。利用N-2在77 K下的吸附/解吸分析煤的孔隙结构。使用分形Frenkel-Halsey-Hill模型分别计算了相对分压为0到0.45和0.45到1的两个分形维数D-1和D-2。结果表明,D-1的值主要受平均孔径在10 nm至220 nm的介孔和大孔对比表面积的影响。因此,Di可用于定量描述煤中这些中孔和大孔的表面粗糙度。同时,D-2的值主要与平均孔径为2nm至10nm的细中孔对总孔体积的影响有关。因此,D-2可用于定量描述煤中这些中孔的体积粗糙度。 Di与煤的孔隙结构参数和最大固含量没有明显的线性相关性,而D-2与煤的比表面积和总孔体积具有正线性相关性。比表面积,总孔体积和D-1的增加对煤的浆化能力具有负面影响。灰分高,挥发分低的高级煤相对而言具有较高的Di和较低的D-2。同时,随着煤炭等级的提高,D-2含量呈下降趋势。煤中平均孔径范围为2 nm至10 nm的细中孔直接影响煤的孔隙结构参数和D-2。因此,如果通过微波辐射,水热处理等改性方法减少煤中这些中孔的数量,则可以提高煤的成浆能力。 (C)2016 Elsevier B.V.保留所有权利。

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