Temperature and seeding effects on the precipitation of scorodite from sulfate solutions under atmospheric-pressure conditions

被引:1
|
作者
Shalabh Singhania
Qiankun Wang
Dimitrios Filippou
George P. Demopoulos
机构
[1] Telarix,the Department of Mining, Metals and Materials Engineering
[2] Inc.,undefined
[3] Inco Ltd.,undefined
[4] Rio Tinto Iron & Titanium Inc.,undefined
[5] McGill University,undefined
关键词
Arsenic; Gypsum; Material Transaction; Hematite; Toxicity Characteristic Leach Procedure;
D O I
暂无
中图分类号
学科分类号
摘要
Arsenic is a major contaminant in the nonferrous extractive metallurgy. In the past 20 years, many studies have shown that it can be precipitated as relatively stable crystalline scorodite (FeAsO4·2H2O) by precipitation under ambient or elevated pressures. In the present study, an extensive program of scorodite precipitation tests under ambient pressure has shown that the rate of scorodite formation increases dramatically by a small increase in temperature from 85 °C to 100 °C. The beneficial effects of temperature are attributed to the higher thermodynamic stability of scorodite at elevated temperatures, but also to higher rates of secondary nuclei formation and crystal growth. In any case, irrespective of the precipitation temperature, the leachability of all scorodite precipitates observed in toxicity characterization leaching procedure (TCLP) tests is below 5 mg/L As. Another parameter examined in this study was seeding. It was observed that the higher the initial concentration of seed, the faster the precipitation. Precipitation of well-crystallized scorodite can be effected equally well on heterogeneous seed such as hematite (Fe2O3) or gypsum (CaSO4·2H2O) added externally or formed in situ.
引用
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页码:327 / 333
页数:6
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