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Selective separation mechanism of hematite from quartz by anionic reverse flotation: Implications from surface hydroxylation.

Authors :
Zhang, Hongliang
Lin, Shangyong
Guo, Zhihao
Sun, Wei
Zhang, Chenyang
Source :
Applied Surface Science. Mar2023, Vol. 614, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Reverse flotation desilication with anionic collector sodium oleate (OL) and activator Ca2+ is a common beneficiation method to purify hematite. Herein, the separation mechanism of hematite and quartz were systematically investigated by experiments and DFT calculations with the effect of surface hydroxylation fully considered. Flotation results showed that the success of anionic reverse flotation of hematite was inseparable from the activation of quartz by Ca2+. In addition, the use of sodium humate (HM), which selectively inhibited hematite, was also very critical. The Zeta potential revealed that the activator Ca2+ ions were highly selective for quartz and depression HM was highly selective for hematite. SEM clearly showed that Ca species were adsorbed on the quartz surface, which was confirmed as chemisorption by XPS. DFT calculations further confirmed that the adsorption of HM on the surface of hematite was more favorable than that of quartz, while Ca2+ on the surface of quartz was more favorable than that of hematite, and the chemisorbed Ca2+ ions on the quartz surface provided targeted reaction sites for the subsequent adsorption of OL, which enabled the activated quartz to overflow into the froth products, while the inhibited hematite to sink and concentrate in the flotation cell. [Display omitted] • Collector OL is less competitive than hydroxyl on the mineral surfaces. • Better selectivity of Ca(II) to the hydroxylated quartz than that of hematite. • Better selectivity of HM to the hydroxylated hematite than that of quartz. • OL can be effectively adsorbed on hydroxylated quartz in the presence of Ca(II). [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01694332
Volume :
614
Database :
Academic Search Index
Journal :
Applied Surface Science
Publication Type :
Academic Journal
Accession number :
161399255
Full Text :
https://doi.org/10.1016/j.apsusc.2022.156056