SORPTION OF AS AND SE ON MINERAL COMPONENTS OF FLY-ASH - RELEVANCE FOR LEACHING PROCESSES

被引:73
作者
VANDERHOEK, EE [1 ]
BONOUVRIE, PA [1 ]
COMANS, RNJ [1 ]
机构
[1] NETHERLANDS ENERGY RES FDN,POB 1,1755 ZG DETTEN,NETHERLANDS
关键词
D O I
10.1016/0883-2927(94)90062-0
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
To improve our understanding of As and Sc leaching from fly ash it is necessary to know the underlying geochemical processes. It has been previously suggested that sorption processes may control the partitioning of these trace elements during leaching of fly ash. In natural systems, such as soils and sediments, As and Se have been shown to interact with iron oxides at acidic pH, with CaCO3 at alkaline pH and with clay-minerals at neutral pH. By analogy, we compared the leaching of As and Se from fly ash with the sorption of arsenate and selenite on hematite, portlandite and mullite. It was possible to describe the leaching of As and Se from acidic fly ash with a simplified model of surface complexation with iron oxides. The apparent adsorption constants calculated from the leaching experiments resembled those calculated from our sorption experiments with hematite and values published for amorphous iron oxide. The leaching of As and Se from alkaline fly ash was compared with the sorption of arsenate and selenite on portlandite. A Ca-phase was shown to control the leaching process. Portlandite was shown to be an important sorbent for arsenate and to a lesser extent for selenite, at pH > 12.4. The affinity of arsenate and selenite for mullite was low. Maximum sorption was reached in the neutral pH ranges, similar to the interactions of oxyanions with kaolinite. Sorption reversibility of arsenate on all three minerals considered in this study was less, or at least slower, than that of selenite. This feature may partly explain that the fraction of As available for leaching from fly ash is generally lower.
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页码:403 / 412
页数:10
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[1]  
Agget, Roberts, Insight into the mechanism of accumulation of arsenate and phosphate in hydro lake sediments by measuring the rate of dissolution with ethylenediaminetetraacetic acid, Environmental Science & Technology, 20, pp. 183-186, (1986)
[2]  
Anderson, Ferguson, Gavis, Arsenate adsorption on amorphous aluminium hydroxide, J. Colloid Interface Sci., 54, pp. 391-399, (1976)
[3]  
Aylmore, Karim, Quirk, ADSORPTION AND DESORPTION OF SULFATE IONS BY SOIL CONSTITUENTS, Soil Science, 103, pp. 10-15, (1967)
[4]  
Balistrieri, Chao, Selenium adsorption by goethite, Soil Sci. Soc. Am. J., 51, pp. 1145-1151, (1987)
[5]  
Balistrieri, Chao, Adsorption of selenium by amorphous iron oxyhydroxide and manganese dioxide, Geochim. cosmochim. Acta, 54, pp. 739-751, (1990)
[6]  
Belzile, Tessier, Interactions between arsenic and iron oxyhydroxides in lacustrine sediments, Geochim. cosmochim. Acta, 54, pp. 103-109, (1990)
[7]  
Breewsma, Adsorption of ions on hematite (α-Fe<sub>2</sub>-O<sub>3</sub>), Ph.D. Thesis, (1973)
[8]  
Chao, Zhou, Extraction techniques for selective dissolution of amorphous iron oxides from soils and sediments, Soil Sci. Soc. Am. J., 47, pp. 225-232, (1983)
[9]  
Cowan, Review of selenium thermodynamic data, (1988)
[10]  
Cowan, Zachara, Resch, Solution ion effects on the surface exchange of selenite on calcite, Geochim. cosmochim. Acta, 54, pp. 2223-2234, (1990)