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Experimental and Modeling Study of Methane Adsorption on Activated Carbon Derived from Anthracite

机译:无烟煤活性炭吸附甲烷的实验与模型研究

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Low-cost anthracite was used as the raw material for preparing microporosity controlled activated carbons by KOH activation. The adsorption characteristics of methane onto activated carbon were measured at 298 K and pressures up to 3.5 MPa by a volumetric method. The experimental data were fitted to the Dubinin-Astakhov model, and relative deviations of better than 0.1 % were obtained. Three main factors were suggested, accounting for the higher methane uptake. It was revealed that better methane uptake is dependent on larger micropore volume and specific surface area. When the micropore volume and surface area of two samples are similar, the activated carbon possessing a narrower micropore size distribution performed higher methane uptake. The relationship between the surface coverage (C/C0) and the isosteric heat of adsorption confirmed that the heterogeneities of the as-obtained samples was a main factor influencing the methane adsorption at a surface coverage lower than 0.7. The activated carbon possessing higher heterogeneity deserved better methane uptake. The kinetics of methane adsorption on five activated carbons obeyed the pseudosecond-order equation very well under current experimental conditions (298 K, 0.28 MPa). The activated carbon displayed a faster adsorption rate and possessed a better adsorption capacity of methane.
机译:低成本无烟煤被用作通过KOH活化制备微孔控制活性炭的原料。通过体积法在298 K和最高3.5 MPa的压力下测量了甲烷在活性炭上的吸附特性。将实验数据拟合到Dubinin-Astakhov模型,并且获得了优于0.1%的相对偏差。建议了三个主要因素,以解释甲烷的较高吸收。揭示了更好的甲烷吸收取决于更大的微孔体积和比表面积。当两个样品的微孔体积和表面积相似时,具有较窄微孔尺寸分布的活性炭具有较高的甲烷吸收率。表面覆盖率(C / CO)与吸附等渗热之间的关系证实,所获得样品的不均匀性是影响甲烷在低于0.7的表面吸附率的主要因素。具有较高非均质性的活性炭应具有更好的甲烷吸收率。在当前的实验条件下(298 K,0.28 MPa),甲烷在五个活性炭上的吸附动力学很好地遵循了伪二级方程。活性炭表现出更快的吸附速率,并具有更好的甲烷吸附能力。

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