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镅(III)与腐殖质胶体相互作用的动力学研究。

A kinetic study of Am(III)/humic colloid interactions.

作者信息

Artinger Robert, Schuessler Wolfram, Schaefer Thorsten, Kim Jae-Il

机构信息

Forschungszentrum Karlsruhe, Institut für Nukleare Entsorgung, Germany.

出版信息

Environ Sci Technol. 2002 Oct 15;36(20):4358-63. doi: 10.1021/es025594f.

Abstract

The interaction kinetics of the Am(III) ion with aquatic humic colloids is investigated under near-natural conditions by column experiments with a sandy aquifer sample rich in humic substancesforthe appraisal of the migration behavior of Am. The association and dissociation kinetics of the Am ion onto and from humic colloids control the migration of colloid-borne Am. As the contact time between Am and humic colloids prior to introduction into a column is increased, the mobility of colloid-borne Am is enhanced and hence the recovery of Am in the effluent increases. On the other hand, an increase of the migration time and residence time in column, respectively, reduces the Am recovery. Considering these experimental results a refined version of the kinetic model KICAM (Kinetically Controlled Availability Model), which suggests different Am binding modes with humic colloids, was developed. Applying KICAM it is possible to predict static and dynamic experiments affected by the kinetically controlled Am/humic colloid interactions over the range of 1 h up to several months. However, to apply these experimental results to long-term conditions, the Am binding scheme as proposed in KICAM needs to be verified. This paper provides, therefore, a basis for a better understanding of the colloid-borne Am migration in porous aquifer systems.

摘要

通过使用富含腐殖质的砂质含水层样本进行柱实验,在近自然条件下研究了镅(III)离子与水生腐殖质胶体的相互作用动力学,以评估镅的迁移行为。镅离子与腐殖质胶体之间的缔合和解离动力学控制着胶体携带的镅的迁移。随着引入柱之前镅与腐殖质胶体之间的接触时间增加,胶体携带的镅的迁移率提高,因此流出物中镅的回收率增加。另一方面,分别增加在柱中的迁移时间和停留时间会降低镅的回收率。考虑到这些实验结果,开发了动力学模型KICAM(动力学控制可用性模型)的改进版本,该模型提出了镅与腐殖质胶体的不同结合模式。应用KICAM可以预测在1小时至数月范围内受动力学控制的镅/腐殖质胶体相互作用影响的静态和动态实验。然而,要将这些实验结果应用于长期条件,KICAM中提出的镅结合方案需要得到验证。因此,本文为更好地理解多孔含水层系统中胶体携带的镅的迁移提供了基础。

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