Effect of nanobubbles on the flotation of different sizes of coal particle

被引:0
作者
Fan, Maoming [1 ]
Tao, Daniel [2 ]
Zhao, Yuemin [3 ]
Honaker, Rick [2 ]
机构
[1] Eriez Flotation Division, Erie, PA
[2] University of Kentucky, Lexington, KY
[3] China University of Mining and Technology, Xuzhou
关键词
Coal processing; Flotation; Froth flotation; Industrial minerals; Nanobubbles;
D O I
10.1007/bf03402262
中图分类号
学科分类号
摘要
Froth flotation is the most widely used method of separating fine coal, especially coal with coking properties. However, froth flotation is not efficient for treating ultrafine coal and coarse coal particles. Our previous fundamental test results demonstrated that cavitation-generated nanobubbles around 700 nm in diameter can significantly improve coal and phosphate flotation performance over a wide particle size range. In this study, the effect of nanobubbles on the flotation performance of different particle size fractions of coal was investigated using a bank of 10-L flotation cells, a specially designed 50-mm inside diameter column and a 152-mm inside diameter column. It was found that nanobubbles that were either directly formed on or subsequently attached to the surface of coal particles during the froth flotation process improved flotation efficiency. The use of nanobubbles in a bank of mechanical cells flotation and column flotation significantly increased the flotation recovery at a given product grade. Nanobubbles increased the flotation rate constants of different coal particle sizes. The presence of nanobubbles in flotation slurry could extend the lower and the upper particle size limits for effective coal flotation. © SME.
引用
收藏
页码:157 / 161
页数:4
相关论文
共 50 条
[31]   Entrainment probability of coal particle by bubble trailing vortex in coal flotation [J].
Zhu, Hongzheng ;
Pan, Gaochao ;
Zhang, Yong ;
Shi, Qinghui ;
He, Hailing ;
Ou, Zhanbei ;
Gao, Lei ;
Zhu, Jinbo .
FUEL, 2023, 348
[32]   Insight into the Effect of Nanobubbles on Fine Muscovite Powder Flotation in Different Dodecylamine Concentrations and Stirring Intensities: Kinetics and Mechanism [J].
Zhang, Xinyu ;
Ren, Liuyi ;
Bao, Shenxu ;
Zhang, Yimin ;
Chen, Guohao ;
Chen, Bo .
MINERALS, 2024, 14 (07)
[33]   Effect of the ultrasonic standing wave frequency on the attractive mineralization for fine coal particle flotation [J].
Chen, Yuran ;
Chelgani, Saeed Chehreh ;
Bu, Xiangning ;
Xie, Guangyuan .
ULTRASONICS SONOCHEMISTRY, 2021, 77
[34]   Flotation of quartz particles assisted by nanobubbles [J].
Calgaroto, S. ;
Azevedo, A. ;
Rubio, J. .
INTERNATIONAL JOURNAL OF MINERAL PROCESSING, 2015, 137 :64-70
[35]   Effect of nanobubbles for improvement of water quality in freshwater: Flotation model simulation [J].
Kim, Mi-Sug ;
Han, Mooyoung ;
Kim, Tschung-Il ;
Lee, Jae-Wook ;
Kwak, Dong-Heui .
SEPARATION AND PURIFICATION TECHNOLOGY, 2020, 241 (241)
[36]   Effect of polyaluminum chloride on coal flotation performance with different reagent addition regimes [J].
Liang, Long ;
Tian, Feng ;
Wang, Liguang ;
Xie, Guangyuan .
POWDER TECHNOLOGY, 2019, 349 :84-91
[37]   Modeling of fine coal flotation separation based on particle characteristics and hydrodynamic conditions [J].
Shahbazi B. ;
Chelgani S.C. .
International Journal of Coal Science & Technology, 2016, 3 (4) :429-439
[38]   The Effect of Dimensionless Parameters on Coal Flotation [J].
Shahbazi, Behzad ;
Rezai, Bahram ;
Koleini, S. M. Javad ;
Noaparast, Mohammad .
INTERNATIONAL JOURNAL OF COAL PREPARATION AND UTILIZATION, 2012, 32 (04) :157-168
[39]   A Comparative Study of Different Columns Sizes for Ultrafine Apatite Flotation [J].
Matiolo, Elves ;
Bianquini Couto, Hudson Jean ;
de Lira Teixeira, Michelle Fernanda ;
de Almeida, Renata Nigri ;
de Freitas, Amanda Soares .
MINERALS, 2019, 9 (07)
[40]   The effect of calcium ions on coal flotation [J].
Zhang, Zhijun ;
Zhang, Hanyu ;
Nong, Haitao ;
Liu, Jiongtian .
ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2017, 39 (08) :817-821