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Fractal analysis of CO2 and N-2 adsorption data to assess textural changes during char gasification

机译:CO2和N-2吸附数据的分形分析评估炭气化过程中的纹理变化

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This study aims to show how fractal analysis applied to nitrogen and carbon dioxide adsorption isotherms helps to understand the textural changes during char activation. The materials under study were two series of activated carbons obtained by means of CO2 gasification of chars at 1123 K. The chars were obtained through carbonization at 1123 K of a high-volatile A bituminous coal that was previously oxidized in air at 543 and 473 K for periods of time from 0 up to 14 days. The fractal analysis of CO2 and N-2 adsorption data corresponding to activated carbons is carried out by using the approaches of Neimark and Wang-Li. Fractal and other textural characteristics of the series of activated carbons are put side by side with those of the series of the corresponding chars. Pore network development through activation depends on the extent of the air preoxidation of the precursor coal as this step conditions the textural properties of the carbonized materials that also determine the behaviour during activation. Fractal and other textural characteristics indicate that coal preoxidation at 543 K leads to chars that are more stable during activation than those obtained from coals preoxidized at 473 K. The changes in fractal dimensions caused by gasification can be explained taking into account the classical textural properties, the effect of gasification and also the pore structure of the precursor char. The gasification process itself produces a decrease in fractal dimensions and the existence of non-accessible porosity in chars may contribute to an increase in fractal dimensions during activation. The prevalence of the smoothening effect of char gasification was found to be more important for the zones of the narrowest pores. Consequently, variation of fractal characteristics as a consequence of gasification depends on the technique employed for the analysis: CO2, N-2 adsorption or mercury porosimetry.
机译:本研究旨在展示应用于氮气和二氧化碳吸附等温线的分形分析有助于了解炭激活过程中的纹理变化。通过1123k的COLS的CO 2气化获得的两系列活性炭是通过1123K的CO 2获得的两系列活性碳。通过以1123k的高挥发性沥青煤的碳化在543和473k中氧化,通过碳化获得。从0到14天的时间段。通过使用Neimark和Wang-Li的方法进行对应于活性碳的CO2和N-2吸附数据的分形分析。该系列活性碳的分形和其他纹理特征与相应的磁性系列的系列并排放置。通过激活的孔网络发展取决于前体煤的空气预氧化程度,因为该步骤条件碳化材料的纹理性质也决定了激活期间的行为。分形和其他纹理特征表明,543K的煤预氧化导致活化期间比从473K预氧化的煤中获得的焦炭更稳定。考虑到经典的纹理性质,可以解释由气化引起的分形尺寸的变化。气化的影响以及前体焦炭的孔结构。气化过程本身产生分形尺寸的降低,并且在焦炭中的不可接近孔隙率的存在可能有助于激活过程中的分形尺寸的增加。发现炭气化平滑效果的患病率对最窄孔的区域更为重要。因此,由于气化的后果的分形特征的变化取决于用于分析的技术:CO 2,N-2吸附或汞孔隙率。

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