Theoretical and experimental study on high-entropy flotation of micro-fine cassiterite

Shuming Wen , Yongchao Miao , Yanyu Tang , Zhengyong Song , Qicheng Feng

Int J Min Sci Technol ›› 2025, Vol. 35 ›› Issue (1) : 19 -39.

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Int J Min Sci Technol ›› 2025, Vol. 35 ›› Issue (1) : 19 -39. DOI: 10.1016/j.ijmst.2024.12.012

Theoretical and experimental study on high-entropy flotation of micro-fine cassiterite

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Abstract

Tin is a critical metal for various industries, making its recovery from low-grade cassiterite ores crucial. This study aimed to optimize the flotation recovery of cassiterite using multi-component collector systems. Several collectors were initially selected through micro-flotation tests, leading to the identification of optimal proportions for a four-component collector system (SHA-OHA-SPA-DBIA in a 4:3:2:1 ratio). Molecular dynamics simulations and surface tension tests were used to investigate the micellar behavior of these collectors in aqueous solution. The adsorption characteristics were quantified using microcalorimetry, enabling the determination of collection entropy and changes in Gibbs free energy. The four-component collector system showed the highest entropy change and the most favorable Gibbs free energy, leading to a cassiterite recovery of above 90% at a concentration of 8.0×10−5 mol/L. Various analytical techniques were employed to systematically characterize the adsorption mechanism. The findings revealed a positive correlation between the adsorption products formed by the multi-component collectors on the cassiterite surface and the entropy changes. Industrial-scale testing of the high-entropy collector system produced a tin concentrate with an Sn grade of 6.17% and an Sn recovery of 82.43%, demonstrating its substantial potential for practical applications in cassiterite flotation.

Keywords

High-entropy / Flotation / Cassiterite / Adsorption / Molecular dynamics / QCM-D

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Shuming Wen, Yongchao Miao, Yanyu Tang, Zhengyong Song, Qicheng Feng. Theoretical and experimental study on high-entropy flotation of micro-fine cassiterite. Int J Min Sci Technol, 2025, 35(1): 19-39 DOI:10.1016/j.ijmst.2024.12.012

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Acknowledgments

This work was supported by Yunnan Science and Technology Leading Talent Project (No. 202305AB350005).

References

[1]

Wang PP, Qin WQ, Ren LY, Wei Q, Liu RZ, Yang CR, Zhong S. Solution chemistry and utilization of alkyl hydroxamic acid in flotation of fine cassiterite. Trans Nonferr Met Soc China 2013; 23(6):1789-96.

[2]

Yao J, Ban XQ, Xie Y, Yin WZ, Wang YL, Xue FJ. Research advancement of efficient flotation separation technologies for magnesium-containing minerals. Green Smart Min Eng 2024; 1(2):140-56.

[3]

Glor M. Transfer of powders into flammable solvents overview of explosion hazards and preventive measures. J Loss Prev Process Ind 2006; 19(6):656-63.

[4]

Angadi SI, Sreenivas T, Jeon HS, Baek SH, Mishra BK. A review of cassiterite beneficiation fundamentals and plant practices. Miner Eng 2015; 70:178-200.

[5]

Ye XJ, Lu BJ, Feng ZF, Chen JQ. Test and application of sawtooth wave jigger for recovering fine cassiterite. Metal Mine 2009; 2(1):134-6.

[6]

Sreenivas T, Manohar C. Investigations on the collector reagent development for the recovery of cassiterite from the gravity tails of a low grade Indian tin ore. Miner Process Extr Metall Rev 1998; 19(1):461-79.

[7]

Yao J, Sun YS, Yin WZ, Sun HR, Yang S. Study on the effects of a novel imidazoline siliconophilic collector in the desilication process of magnesite: Separation experiments, adsorption mechanisms, and separation model. Sep Purif Technol 2025; 353:128461.

[8]

Sahoo H, Sinha N, Rath SS, Das B. Ionic liquids as novel quartz collectors: Insights from experiments and theory. Chem Eng J 2015; 273:46-54.

[9]

Bulatovic S, De Silvio E. Process development for impurity removal from a tin gravity concentrate. Miner Eng 2000; 13(8-9):871-9.

[10]

Tan X, He FY, Shang YB, Yin WZ. Flotation behavior and adsorption mechanism of (1-hydroxy-2-methyl-2-octenyl) phosphonic acid to cassiterite. Trans Nonferrous Met Soc China 2016; 26(9):2469-78.

[11]

Miao YC, Feng QC, Wen SM, Song ZY. A self-assembled surfactant for efficient flotation of cassiterite: Experimental study and DFT calculation. Sep Purif Technol 2025; 353:128439.

[12]

Wen SM. Thermodynamic theory of flotation for a complex multiphase solidliquid system and high-entropy flotation. Int J Miner Metall Mater 2024; 31(6):1177-97.

[13]

Miao YC, Wen SM, Hao JM, Shen ZH, Han G, Zhang Q, Feng QC. Dodecylbenzene sulfonate isopropanolamine as an eco-friendly collector for selective separation of cassiterite from quartz. Miner Eng 2023; 198:108085.

[14]

Hoffman JR, Baumann AE, Stafford CM. Thickness dependent CO2 adsorption of poly(ethyleneimine) thin films for direct air capture. Chem Eng J 2024;481.

[15]

He XY, Li CZ, Zhu SY, Cai JX, Yang G, Hao YN, Shi YH, Wang RW, Wang LM, Li XX, Qin XH. Layer-by-layer self-assembly of durable, breathable and enhanced performance thermoelectric fabrics for collaborative monitoring of human signal. Chem Eng J 2024; 490:151470.

[16]

Jia WH, Jiao F, Zhu HL, Xu L, Qin WQ. Mitigating the negative effects of feldspar slime on spodumene flotation using mixed anionic/cationic collector. Miner Eng 2021; 168:106813.

[17]

Xu LH, Hu YH, Tian J, Wu HQ, Wang L, Yang YH, Zhen W. Synergistic effect of mixed cationic/anionic collectors on flotation and adsorption of muscovite. Colloids Surf A Physicochem Eng Aspects 2016; 492:181-9.

[18]

Lan LH, Chen JH, Li YQ, Lan P, Yang Z, Ai GY. Microthermokinetic study of xanthate adsorption on impurity-doped galena. Trans Nonferrous Met Soc China 2016; 26(1):272-81.

[19]

Zheng QF, Dong LY, Shen PL, Liu DW. Exploring a clean organic carboxylic acid depressant for flotation separation of tungsten-tin minerals. J Environ Chem Eng 2024; 12(5):113451.

[20]

Zheng QF, Dong LY, Shen PL, Liu DW. Synergistic effect and mechanism of ferric ion modified citric acid depressant in the flotation separation of scheelite from cassiterite. Sep Purif Technol 2025; 353:128423.

[21]

Zheng QF, Zhou Y, Qiao LD, Shen PL, Mao YQ, Dong LY, Liu DW. Selective adsorption of soluble starch on the cassiterite surface for effective flotation separation of scheelite from cassiterite. Surf Interfaces 2024; 48:104238.

[22]

Yin MY, Hao HY, Wei H, Li MY, Shao ZQ. In situ adsorption study of carboxymethylcellulose and sodium oleate on quartz using a quartz crystal microbalance with dissipation (QCM-D). Colloids Surf A Physicochem Eng Aspects 2024; 685:133197.

[23]

Lan LJ, Sun W, Yang Y, Jiang F, Wang L. Auxiliary collector optimizing foam characteristic and adsorption behavior towards efficient flotation desilication of bauxite. Sep Purif Technol 2025; 353:128322.

[24]

Akgul FA, Gumus C, Er AO, Farha AH, Akgul G, Ufuktepe Y, Liu Z. Structural and electronic properties of SnO2. J Alloys Compd 2013; 579:50-6.

[25]

Feng QC, Zhang YC, Zhang G, Han G, Zhao WJ. A novel sulfidization system for enhancing hemimorphite flotation through Cu/Pb binary metal ions. Int J Min Sci Technol 2024; 34(12):1741-52.

[26]

Liu Z, Wang YB. Characterization of triazinedithiolsilane polymeric nanofilm fabricated by galvanostatic technique on copper surface. Int J Electrochem Sci 2016; 11(2):1434-55.

[27]

Zhong CH, Feng B, Zhang WP, Zhang LZ, Guo YT, Wang T, Wang HH. The role of sodium alginate in the flotation separation of apatite and dolomite. Powder Technol 2020; 373:620-6.

[28]

Ishizaki T, Okido M, Masuda Y, Saito N, Sakamoto M. Corrosion resistant performances of alkanoic and phosphonic acids derived self-assembled monolayers on magnesium alloy AZ31 by vapor-phase method. Langmuir 2011; 27(10):6009-17.

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