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Kinetics of adsorption and desorption of Pb(II) in aqueous solution on activated carbon by two-site adsorption model

机译:两点吸附模型研究活性炭对水溶液中Pb(II)的吸附和解吸动力学

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摘要

The adsorption and desorption equilibrium and kinetics of lead ions from aqueous solutions on a granular activated carbon (GAC) were examined. Rapid increase followed by slow increase in Pb(II) amount on the GAC was observed as a function of time for the adsorption, while rapid decrease and consecutive very slow decrease was observed in desorption. Based on the experimental results, a two-site adsorption model was proposed for the adsorption and the desorption of Pb(II) under the study conditions. The Pb(II) adsorption on the GAC was estimated to have simultaneously occurred on the strong and the weak adsorption sites. Conventional Langmuir-type kinetic equations were introduced to quantitatively predict the adsorption and desorption with the two-site model by optimizing the parameters to fit the equilibrium and the kinetic experimental results. The equilibrium and kinetic experimental results could be represented by the equations by using one set of the common Langmuir parameters. Resultant kinetic parameters revealed that the adsorption equilibrium constant was two orders of magnitude greater for strong adsorption site than for weak adsorption site, though the maximum number of weak adsorption site was 1.5 times as great as that of strong adsorption site. The strong adsorption equilibrium constant resulted from a small desorption rate constant for the site. The equations were demonstrated to be applicable for predicting other desorption performances as well. (C) 2004 Elsevier B.V. All rights reserved.
机译:研究了颗粒状活性炭(GAC)上水溶液中铅离子的吸附和解吸平衡以及动力学。观察到随着吸附时间的增加,GAC上Pb(II)的量迅速增加,然后缓慢增加,而在解吸过程中观察到快速减少和连续非常缓慢的减少。根据实验结果,在研究条件下,提出了一种对Pb(II)的吸附和解吸的两点吸附模型。据估计,GAC上的Pb(II)吸附同时发生在强吸附位和弱吸附位。引入传统的Langmuir型动力学方程,通过优化参数以达到平衡和动力学实验结果,用两点模型定量预测吸附和解吸。平衡和动力学实验结果可以通过使用一组常用的Langmuir参数由方程表示。所得动力学参数表明,强吸附位的吸附平衡常数比弱吸附位的吸附平衡常数大两个数量级,尽管弱吸附位的最大数目是强吸附位的1.5倍。较强的吸附平衡常数是由该位点的小解吸速率常数引起的。证明该方程式也可用于预测其他解吸性能。 (C)2004 Elsevier B.V.保留所有权利。

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