Self inhibition of aluminum leaching from coal fly ash by sulfuric acid

Citation
A. Seidel et al., Self inhibition of aluminum leaching from coal fly ash by sulfuric acid, CHEM ENGN J, 72(3), 1999, pp. 195-207
Citations number
30
Categorie Soggetti
Chemical Engineering
Journal title
CHEMICAL ENGINEERING JOURNAL
ISSN journal
13858947 → ACNP
Volume
72
Issue
3
Year of publication
1999
Pages
195 - 207
Database
ISI
SICI code
1385-8947(19990308)72:3<195:SIOALF>2.0.ZU;2-T
Abstract
The coal fly ash (CFA) that is produced by coal fired power plants in Israe l is alkaline and contains aluminum that can be leached by different acids. In this work, the mechanism of aluminum leaching from CFA by sulfuric acid is considered. It is shown that higher CFA content, which indicates higher solid to Liquid ratio in the leaching suspension, decreases the fraction o f leached aluminum by means of sulfuric acid. This behavior constitutes a n ew unexplained phenomenon, which could not be explained by analysis of the mass action law of the dissolution reactions, but rather by mass transfer c onsiderations. It is shown that the leaching process involves a self inhibi tion mechanism due to the precipitation of calcium sulfate on the surface a nd within the CFA particles. The effects of CFA content, acid concentration , temperature, and pre-leaching conditioning, upon leaching rates and yield s, were tested. Increasing the acid concentration produces two opposing effects simultaneou sly. An increase in concentration of the hydronium ion enhances the dissolu tion of aluminum, whereas the increase in concentration of the sulfate and the dissolved calcium ions intensifies the formation of calcium sulfate pre cipitates. These precipitates hinder mass transfer across the surface of th e CFA particles, and in this sense they generate a self inhibition effect. Conditioning of the CFA with hydrochloric acid at pH 4 removes 65% of the c alcium. Consequently, the conditioned CFA can be leached more efficiently w ith sulfuric acid. This higher leachability is Linked to the reduction in c alcium sulfate precipitation on the CFA. (C) 1999 Published by Elsevier Sci ence S.A. All rights reserved.