reverse flotation
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2022 ◽  
Vol 175 ◽  
pp. 107292
Author(s):  
An Liu ◽  
Pan-pan Fan ◽  
Feng Han ◽  
Hua Han ◽  
Zhi-hong Li ◽  
...  

Author(s):  
Wenbiao Liu ◽  
Wenxuan Huang ◽  
Feng Rao ◽  
Zhanglei Zhu ◽  
Yongming Zheng ◽  
...  
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2021 ◽  
Vol 174 ◽  
pp. 107243
Author(s):  
Qiuyue Sheng ◽  
Wanzhong Yin ◽  
Bin Yang ◽  
Haoran Sun ◽  
Jin Yao
Keyword(s):  

Metals ◽  
2021 ◽  
Vol 11 (11) ◽  
pp. 1802
Author(s):  
Nazym Seksenova ◽  
Rudolf Bykov ◽  
Sergey Mamyachenkov ◽  
Gulzhan Daumova ◽  
Malika Kozhakanova

This article presents the results of studies of a low-waste technology for processing enrichment tailings using a combined enrichment–hydrometallurgical method. After washing the enrichment tailings from harmful products and reducing their size, multi-stage flotation of the crushed material of the enrichment tailings was carried out. The use of a new reagent in the flotation process was studied in order to ensure the maximum recovery of the main valuable components from the enrichment tailings. A new collector of Aero 7249 (Shenyang Florrea Chemicals Co., Ltd., Shenyang, China) type was used for the flotation. The recovery of valuable components was as follows: Cu, 6.78%; Zn, 91.69%; Pb, 80.81%; Au, 95.90%; Ag, 82.50%; Fe, 78.78%. Tailings of the flotation were re-enriched using a fatty acid collector (sodium oleate). Additional (reverse) flotation resulted in obtaining a product corresponding to the composition of building sand in terms of the content of valuable components of the waste rock. The studies of the conditions for processing the enrichment tailings of lead–zinc ore indicate the possibility of its optimization in order to maximize the involvement of waste in the production.


2021 ◽  
Vol 173 ◽  
pp. 107191
Author(s):  
Yafeng Fu ◽  
Ying Hou ◽  
Run Wang ◽  
Yulian Wang ◽  
Xiaofeng Yang ◽  
...  

2021 ◽  
Vol 13 (19) ◽  
pp. 11066
Author(s):  
Arash Tohry ◽  
Reza Dehghan ◽  
Hossein Mohammadi-Manesh ◽  
Laurindo de Salles Leal Filho ◽  
Saeed Chehreh Chelgani

Micaceous minerals, known as layer silicates, are counted mostly as the gangue minerals associated with valuable minerals, especially iron oxides. They mainly reject through the reverse flotation process using the cationic collectors, e.g., ether amines, to improve process sustainability. Although ether amines have been applied for floating the wide range of silicates, few investigations explored their adsorption behaviors on the micaceous minerals. In this study, flotation of phlogopite, biotite, and quartz (for comparison purposes) in the presence of Flotigam®EDA (EDA) (commercial ether monoamine collector), at pH 10 was investigated through the single mineral micro–flotation experiments. Adsorption behaviors were explored by the contact angle, residual surface tension measurements, and zeta potential analyses. Micro–flotation outcomes indicated that the quartz floatability was more than phlogopite and biotite. In the presence of 30 mg/dm3 EDA, their recoveries were 97.1, 46.3, and 63.8%, respectively. Increasing EDA concentration made a substantial increase in micaceous minerals’ floatability. Adsorption assessments confirmed that increasing the EDA concentration resulted in higher adsorption of EDA onto the surface of micaceous minerals than the quartz (all by physical adsorption). Such a behavior could be related to the nature of micaceous minerals, including their layer structure and low hardness.


2021 ◽  
Vol 172 ◽  
pp. 107182
Author(s):  
Hongqiang Li ◽  
Yingxin Chen ◽  
Huifang Zheng ◽  
Peng Huang ◽  
Pujia Yang ◽  
...  

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