Influence of coarse tailings on flocculation settlement

Shi Wang , Xue-peng Song , Xiao-jun Wang , Qiu-song Chen , Jian-chun Qin , Yu-xian Ke

International Journal of Minerals, Metallurgy, and Materials ›› 2020, Vol. 27 ›› Issue (8) : 1065 -1074.

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International Journal of Minerals, Metallurgy, and Materials ›› 2020, Vol. 27 ›› Issue (8) : 1065 -1074. DOI: 10.1007/s12613-019-1948-9
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Influence of coarse tailings on flocculation settlement

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Abstract

The composition of tailings particles in mines plays a key role in the flocculation settlement of slurries. To study the influence of coarse particle tailings (CPTs) on the flocculation settlement of tailings slurries (TSs), static flocculent settling tests, scanning electron microscopy observations, and laser particle size analyses were conducted using the tailings obtained from a copper mine. The results demonstrate that (i) in the accelerated and free settling process, CPTs did not directly settle at the bottom of graduated cylinders; instead, they were netted by the flocculent structures (FSs) and settled together more quickly. The CPTs accelerate the rapid settlement of TSs; the acceleration effect is more obvious when the CPTs content is greater than 50wt%. (ii) The most appropriate flocculant unit consumption (FUC) is 20 g·t−1, and no substantial increase is observed in the flocculant settling velocity with an increase in the flocculant because the effective FSs did not substantially change and thus did not lead to a notable increase in the settling velocity of the solid-liquid interface (SLI). (iii) In the effective settling space of the thickening facility, free water quickly flowed from the pores of FSs, which is reflected in the period from 0 to 1 min.

Keywords

tailings slurry / particle size distribution / flocculent structures / flocculating sedimentation / solid-liquid interface

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Shi Wang, Xue-peng Song, Xiao-jun Wang, Qiu-song Chen, Jian-chun Qin, Yu-xian Ke. Influence of coarse tailings on flocculation settlement. International Journal of Minerals, Metallurgy, and Materials, 2020, 27(8): 1065-1074 DOI:10.1007/s12613-019-1948-9

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References

[1]

Meraz KAS, Vargas SMP, Maldonado JTL, Bravo JMC, Guzman MTO, Maldonado EAL. Eco-friendly innovation for nejayote coagulation-flocculation process using chitosan: Evaluation through zeta potential measurements. Chem. Eng. J., 2016, 284, 536.

[2]

Tan YY, Yu X, Elmo D, Xu LH, Song WD. Experimental study on dynamic mechanical property of cemented tailings backfill under SHPB impact loading. Int. J. Miner. Metall. Mater., 2019, 26(4): 404.

[3]

Tanguay M, Fawell P, Adkins S. Modelling the impact of two different flocculants on the performance of a thickener feedwell. Appl. Math. Modell., 2014, 38(17–18): 4262.

[4]

S. Wang, S. Li, J.C. Qin, G.Z. Xiao, G.C. Yang, and X. Feng, Effect of anionic polyacrylamide on the structural stability of thickened tailings slurry in pipeline transportation, Adv. Mater. Sci. Eng., 2018(2018), art. No. 7131487.

[5]

Li S, Wang XM, Zhang QL. Dynamic experiments on flocculation and sedimentation of argillized ultrafine tailings using fly-ash-based magnetic coagulant. Trans. Nonferrous Met. Soc. China, 2016, 26(7): 1975.

[6]

Sheng C, Duan CL, Zhao YM, Zhou CY, Zhang Y. Simulation and experimental research on coarse coal slime particles’ separation in inclined tapered diameter separation bed. Can. J. Chem. Eng., 2017, 95(11): 2129.

[7]

Botha L, Soares JBP. The influence of tailings composition on flocculation. Can. J. Chem. Eng., 2015, 93(9): 1514.

[8]

Jiao HZ, Wang HJ, Wu AX, Ji XW, Yan QW, Li X. Rule and mechanism of flocculation sedimentation of unclassified tailings. J. Univ. Sci. Technol. Beijing, 2010, 32(6): 702.

[9]

Ries HE, Meyers BL. Flocculation mechanism: Charge neutralization and bridging. Science, 1968, 160(3835): 1449.

[10]

Balakin BV, Shamsutdinova G, Kosinski P. Agglomeration of solid particles by liquid bridge flocculants: Pragmatic modelling. Chem. Eng. Sci., 2015, 122, 173.

[11]

Autier C, Azema N, Taulemesse JM, Clerc L. Mesostructure evolution of cement pastes with addition of superplasticizers highlighted by dispersion indices. Powder Technol., 2013, 249, 282.

[12]

Lee BJ, Schlautman MA, Toorman E, Fettweis M. Competition between kaolinite flocculation and stabilization in divalent cation solutions dosed with anionic polyacrylamides. Water Res., 2012, 46(17): 5696.

[13]

Bürger R, Damasceno JJR, Karlsen KH. A mathematical model for batch and continuous thickening of flocculated suspensions in vessels with varying cross-section. Int. J. Miner. Process., 2004, 73(2–4): 183.

[14]

Zou WJ, Cao YJ, Sun CB, Zhang ZJ. Particles interaction in selective flocculation flotation of fine coal. J. China Univ. Min. Technol., 2015, 44(6): 1061.

[15]

Benn FA, Fawell PD, Halewood J, Austin PJ, Costine AD, Jones WG, Francis NS, Druett DC, Lester D. Sedmentation and consolidation of different density aggregates formed by polymer-bridging flocculation. Chem. Eng. Sci., 2018, 184, 111.

[16]

Kazzaz AE, Feizi ZH, Kong FG, Fatehi P. Interaction of poly(acrylic acid) and aluminum oxide particles in suspension: Particle size effect. Colloids Surf. A, 2018, 556, 218.

[17]

Garmsiri MR, Shirazi HHA. The effect of grain size on flocculant preparation. Miner. Eng., 2014, 65, 51.

[18]

Ng WS, Sonsie R, Forbes E, Franks GV. Flocculation/flotation of hematite fines with anionic temperature-responsive polymer acting as a selective flocculant and collector. Miner. Eng., 2015, 77, 64.

[19]

Fei XJ. Hydraulics of Transporting Slurry and Granular Material, 1994, Beijing, Tsinghua University Press, 105.

[20]

Wu AX, Liu XH, Wang HJ, Jiao HZ, Wang SY, Liu SZ, Xue ZL. Microstructural evolution characteristics of an unclassified tailing paste in constant shearing. Chin. J. Eng., 2015, 37(2): 145.

[21]

Feng Y, Kero J, Yang QX, Chen QS, Engström F, Samuelsson C, Qi CC. Mechanical activation of granulated copper slag and its influence on hydration heat and compressive strength of blended cement. Materials, 2019, 12(5): 772.

[22]

Y. He, Q.S. Chen, C.C. Qi, Q.L. Zhang, and C.C. Xiao, Lithium slag and fly ash-based binder for cemented fine tailings backfill, J. Environ. Manage., 248(2019), art. No. 109282.

[23]

Liu XG, Li Y, Xue WD, Sun JL, Tang Q. Shear-thickening behavior of Fe-ZSM5 zeolite slurry and its removal with alumina/boehmites. Int. J. Miner. Metall. Mater., 2018, 25(6): 682.

[24]

D.L. Wang, Q. L. Zhang, Q.S. Chen, C.C. Qi, Y. Feng, C.C. Xiao, Temperature variation characteristics in flocculation settlement of tailings and its mechanism, Int. J Miner. Metall. Mater. (2020). DOI: https://doi.org/10.1007/s12613-020-2022-3

[25]

Derksen JJ. Simulations of hindered settling of flocculating spherical particles. Int. J. Multiphase Flow, 2014, 58, 127.

[26]

Javaheri E, Finlay WH. Numerical simulation of flocculation and transport of suspended particles: Application to metered-dose inhalers. Int. J. Multiphase Flow, 2014, 64, 28.

[27]

Biggs S, Habgood M, Jameson GJ, Yan YD. Aggregate structures formed via a bridging flocculation mechanism. Chem. Eng. J., 2000, 80(1–3): 13.

[28]

Ruan ZE, Li CP, Shi C. Numerical simulation of flocculation and settling behavior of whole-tailings particles in deep-cone thickener. J. Cent. South Univ., 2016, 23(3): 740.

[29]

Wu AX, Wang Y, Wang HJ. Estimation model for yield stress of fresh uncemented thickened tailings: Coupled effects of true solid density, bulk density, and solid concentration. Int. J. Miner. Process., 2015, 143, 117.

[30]

Z.E. Ruan, Y. Wang, A.X. Wu, S.H. Yin, and F. Jin, A theoretical model for the rake blockage mitigation in deep cone thickener: A case study of lead-zinc mine in china, Math. Probl. Eng., 2019(2019), art. No. 2130617.

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