Quantitative analysis of static yield stress variation in thickened tailings within the compaction zone based on fine structure
Cuiping Li , Gezhong Chen , Zhu’en Ruan , Raimund Bürger , Bingheng Yan , Chen Hu , Xue Li
International Journal of Minerals, Metallurgy, and Materials ›› 2026, Vol. 33 ›› Issue (4) : 1067 -1081.
The poor flowability of high-concentration tailings slurry often leads to slurry hardening and rake blockages in thickeners. To address this, the study employed computed tomography and rheological measurement techniques to investigate the effect of slurry concentration on static yield stress (τB), and a comparative analysis was conducted between thickened tailings and freshly mixed slurry. Results show that the concentration, coarse particle content, and pore structure of thickened tailings are nonhomogeneous. Slurry concentration and the proportion of coarse particles (75–300 µm) increase with decreasing slurry height, while pores in the 50–250-µm range serve as the primary storage space for water. The τB of thickened tailings is 5.3–61.3 times higher than that of freshly mixed slurry. Furthermore, τB decreases with decreasing coefficient of variation (CV) of slurry porosity. It is proposed to use CV to quantify differences in τB between thickened tailings and freshly mixed slurry. Field application at an iron ore mine in China validated the results, providing insights to mitigate slurry hardening in silos.
tailings thickening / static yield stress / particle gradation / pore-network model / slurry flowability
| [1] |
|
| [2] |
|
| [3] |
|
| [4] |
N.M. Rana, N. Ghahramani, S.G. Evans, et al., Global magnitude-frequency statistics of the failures and impacts of large water-retention dams and mine tailings impoundments, Earth Sci. Rev., 232(2022), art. No. 104144. |
| [5] |
S. Gao, W. Li, K.K. Yuan, and C.X. Rong, Properties and application of thixotropic cement paste backfill with molybdenum tailings, J. Cleaner Prod., 391(2023), art. No. 136169. |
| [6] |
|
| [7] |
|
| [8] |
M. Boshrouyeh Ghandashtani, A. Costine, M. Edraki, and T. Baumgartl, The impacts of high salinity and polymer properties on dewatering and structural characteristics of flocculated high-solids tailings, J. Cleaner Prod., 342(2022), art. No. 130726. |
| [9] |
G.Z. Chen, C.P. Li, Z.E. Ruan, R. Bürger, Y. Gao, and H.Z. Hou, Structural evolution of bed drainage channels under the shear effect of the whole process of tailings thickening, Miner. Eng., 203(2023), art. No. 108364. |
| [10] |
C.C. Qi and A. Fourie, Cemented paste backfill for mineral tailings management: Review and future perspectives, Miner. Eng., 144(2019), art. No. 106025. |
| [11] |
A.X. Wu, Z.E. Ruan, R. Bürger, S.H. Yin, J.D. Wang, and Y. Wang, Optimization of flocculation and settling parameters of tailings slurry by response surface methodology, Miner. Eng., 156(2020), art. No. 106488. |
| [12] |
T. Mashifana and T. Sithole, Clean production of sustainable backfill material from waste gold tailings and slag, J. Cleaner Prod., 308(2021), art. No. 127357. |
| [13] |
B.C. Trampus and S.C.A. França, Performances of two flocculants and their mixtures for red mud dewatering and disposal based on mineral paste production, J. Cleaner Prod., 257(2020), art. No. 120534. |
| [14] |
S.H. Yin, Y.J. Shao, A.X. Wu, H.J. Wang, X.H. Liu, and Y. Wang, A systematic review of paste technology in metal mines for cleaner production in China, J. Cleaner Prod., 247(2020), art. No. 119590. |
| [15] |
R. Arjmand, M. Massinaei, and A. Behnamfard, Improving flocculation and dewatering performance of iron tailings thickeners, J. Water Process Eng., 31(2019), art. No. 100873. |
| [16] |
|
| [17] |
G.Z. Chen, C.P. Li, Z.E. Ruan, R. Bürger, and H.Z. Hou, Research on floc structure and physical properties based on pipeline flocculation, J. Water Process Eng., 53(2023), art. No. 103627. |
| [18] |
|
| [19] |
W.J. Peng, S. Lv, Y.J. Cao, et al., A novel pH-responsive flocculant for efficient separation and recovery of Cu and Mo from secondary resources via selective flocculation-flotation, J. Cleaner Prod., 395(2023), art. No. 136463. |
| [20] |
L.Y. Zhu, W.S. Lyu, X.H. Mao, et al., Effect of solution pH and polyethylene oxide concentration on surface/interface properties, flocculation and rheology of concentrated monodisperse ultrafine synthetic tailings slurry, Powder Technol., 430(2023), art. No. 119002. |
| [21] |
A. da M.C. Leite, and É.L. Reis, Cationic starches as flocculants of iron ore tailing slime, Miner. Eng., 148(2020), art. No. 106195. |
| [22] |
Z.W. Lin, C.H. Zhang, Y.F. Hu, et al., Nano aluminum-based hybrid flocculant: Synthesis, characterization, application in mine drainage, flocculation mechanism, J. Cleaner Prod., 399(2023), art. No. 136582. |
| [23] |
|
| [24] |
H. Walch, F. von der Kammer, and T. Hofmann, Freshwater suspended particulate matter—Key components and processes in floc formation and dynamics, Water Res., 220(2022), art. No. 118655. |
| [25] |
|
| [26] |
C. Wang, C.B. Sun, and Q. Liu, Formation, breakage, and re-growth of quartz flocs generated by non-ionic high molecular weight polyacrylamide, Miner. Eng., 157(2020), art. No. 106546. |
| [27] |
|
| [28] |
L.P. Ye, J.X. Wu, M. Huang, and J. Yan, The role of suspended extracellular polymeric substance (EPS) on equilibrium flocculation of clay minerals in high salinity water, Water Res., 244(2023), art. No. 120451. |
| [29] |
E. Asensi and E. Alemany, A hindered settling velocity model related to the fractal dimension and activated sludge flocs characteristics: Application to a sludge with a previous fragmentation and flocculation process, Sep. Purif. Technol., 300(2022), art. No. 121812. |
| [30] |
Y. Liu, X. Zhang, W.M. Jiang, M.R. Wu, and Z.H. Li, Comprehensive review of floc growth and structure using electrocoagulation: Characterization, measurement, and influencing factors, Chem. Eng. J., 417(2021), art. No. 129310. |
| [31] |
W.P. He, X.Q. Chen, C.W. Xu, C. Zhou, and C.P. Wang, Internal interaction between chemically-pretreated polypropylene microplastics and floc growth during flocculation: Critical effect on floc properties and flocculation mechanisms, Sep. Purif. Technol., 306(2023), art. No. 122710. |
| [32] |
O. Murujew, J. Geoffroy, E. Fournie, et al., The impact of polymer selection and dose on the incorporation of ballasting agents onto wastewater aggregates, Water Res., 170(2020), art. No. 115346. |
| [33] |
|
| [34] |
H.B. He, Y.J. Liu, A.N. Zhang, et al., Kinetic modeling and experimental verification of a swirl flocculation-enhanced reactor: A case study of coal chemical wastewater pretreatment, Sep. Purif. Technol., 326(2023), art. No. 124852. |
| [35] |
|
| [36] |
L.Y. Zhu, W.S. Lyu, P. Yang, and Z.K. Wang, Effect of ultrasound on the flocculation-sedimentation and thickening of unclassified tailings, Ultrason. Sonochem., 66(2020), art. No. 104984. |
| [37] |
H.Z. Jiao, S.F. Wang, Y.X. Yang, and X.M. Chen, Water recovery improvement by shearing of gravity-thickened tailings for cemented paste backfill, J. Cleaner Prod., 245(2020), art. No. 118882. |
| [38] |
G.Z. Chen, C.P. Li, Z.E. Ruan, R. Bürger, and H.Z. Hou, A new permeability model of the compressible tailings thickening bed based on the throat structure parameters, Powder. Technol., 433(2024), art. No. 119263. |
| [39] |
H.Z. Jiao, Y.C. Wu, H. Wang, et al., Micro-scale mechanism of sealed water seepage and thickening from tailings bed in rake shearing thickener, Miner. Eng., 173(2021), art. No. 107043. |
| [40] |
R.D. Jia, B. Zhang, D.K. He, Z.Z. Mao, and F. Chu, Data-driven-based self-healing control of abnormal feeding conditions in thickening–dewatering process, Miner. Eng., 146(2020), art. No. 106141. |
| [41] |
|
| [42] |
C.P. Li, X. Li, Z.E. Ruan, Z.H. Huang, and H. Wang, Analysis of homogeneity and rheological properties of filling slurry during the mixing process through electrical resistance tomography, Powder. Technol., 428(2023), art. No. 118850. |
| [43] |
H.J. Wang, X.L. Wang, A.X. Wu, and Q.S. Peng, A wall slip pressure gradient model of unclassified tailings paste in pipe flow: Theoretical and loop test study, J. Non-Newton Fluid Mech., 298(2021), art. No. 104691. |
| [44] |
X. Li, C.P. Li, Z.E. Ruan, B.H. Yan, H.Z. Hou, and L. Chen, Analysis of particle migration and agglomeration in paste mixing based on discrete element method, Constr. Build. Mater., 352(2022), art. No. 129007. |
| [45] |
|
| [46] |
|
| [47] |
|
| [48] |
|
| [49] |
|
| [50] |
|
| [51] |
|
| [52] |
L.F. Zhang, H.J. Wang, A.X. Wu, B. Klein, J.B. Guo, and X. Zhang, A zone settling velocity function to characterize settling properties of suspensions in thickening applications, Miner. Eng., 177(2022), art. No. 107386. |
| [53] |
M.R. MacIver and M. Pawlik, A floc structure perspective on sediment consolidation in thickened tailings, Chem. Eng. Sci., 263(2022), art. No. 118095. |
| [54] |
|
University of Science and Technology Beijing
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