Mineralogical characterization and flotation properties of rare earths in refractory iron tailings subjected to hydrogen-based mineral phase transformation

Jilai Ning , Peng Gao , Yang Wang , Zihao Li , Shuai Yuan , Yongsheng Sun , Wenbo Li , Zhidong Tang

International Journal of Minerals, Metallurgy, and Materials ›› 2025, Vol. 32 ›› Issue (6) : 1309 -1321.

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International Journal of Minerals, Metallurgy, and Materials ›› 2025, Vol. 32 ›› Issue (6) : 1309 -1321. DOI: 10.1007/s12613-024-3053-y
Research Article

Mineralogical characterization and flotation properties of rare earths in refractory iron tailings subjected to hydrogen-based mineral phase transformation

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Abstract

Hydrogen-based mineral phase transformation (HMPT) technology has demonstrated its effectiveness in separating iron and enriching rare earths from Bayan Obo refractory ores. However, further research is needed to clarify the phase composition and floatability of rare earths obtained after HMPT owing to the associated phase transformations. This study explored the mineralogical characteristics and separation behavior of rare earths in HMPT-treated iron tailings. Process mineralogy studies conducted via BGRIMM process mineralogy analysis and X-ray diffraction revealed that the main valuable minerals in the tailings included rare-earth oxides (9.15wt%), monazite (5.31wt%), and fluorite (23.52wt%). The study also examined the impact of mineral liberation and gangue mineral intergrowth on flotation performance. Flotation tests achieved a rare-earth oxide (REO) grade of 74.12wt% with a recovery of 34.17% in open-circuit flotation, whereas closed-circuit flotation resulted in a REO grade of 60.27wt% with a recovery of 73%. Transmission electron microscopy and scanning electron microscopy coupled with energy-dispersive spectroscopy revealed that monazite remained stable during the HMPT process, while bastnaesite was transformed into Ce7O12 and CeF3, leading to increased collector consumption. Nonetheless, the HMPT process did not significantly affect the flotation performance of rare earths. The enrichment of fluorite in the tailings highlighted its further recovery potential. The integration of HMPT with magnetic separation and flotation presents an efficient strategy for recovering rare earths, iron, and fluorite from Bayan Obo ores.

Keywords

hydrogen-based mineral phase transformation / rare-earth flotation / process mineralogy study / Bayan Obo refractory ores

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Jilai Ning, Peng Gao, Yang Wang, Zihao Li, Shuai Yuan, Yongsheng Sun, Wenbo Li, Zhidong Tang. Mineralogical characterization and flotation properties of rare earths in refractory iron tailings subjected to hydrogen-based mineral phase transformation. International Journal of Minerals, Metallurgy, and Materials, 2025, 32(6): 1309-1321 DOI:10.1007/s12613-024-3053-y

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References

[1]

R.J. Yu, H.T. Yang, X.H. Yu, et al., Extraction and separation of iron technology and research progress, Sep. Purif. Technol., 334(2024), art. No. 125985.

[2]

H.D. She, H.R. Fan, K.F. Yang, et al., In situ trace elements of magnetite in the Bayan Obo REE–Nb–Fe deposit: Implications for the genesis of mesoproterozoic iron mineralization, Ore Geol. Rev., 139(2021), art. No. 104574.

[3]

DrewLJ, MengQR, SunWJ. The Bayan Obo iron–rare-earth–niobium deposits, Inner Mongolia, China. Lithos, 1990, 26(1–2): 43

[4]

MatsuuraH, YangX, LiGQ, YuanZF, TsukihashiF. Recycling of ironmaking and steelmaking slags in Japan and China. Int. J. Miner. Metall. Mater., 2022, 29(4): 739

[5]

GuoYF, ZhangJL, WangS, et al.. Diffusion and reaction mechanism of limestone and quartz in fluxed iron ore pellet roasting process. Int. J. Miner. Metall. Mater., 2024, 31(3): 485

[6]

YouJX, WangJ, RaoMJ, et al.. An integrated and efficient process for borax preparation and magnetite recovery from soda-ash roasted ludwigite ore under CO–CO2–N2 atmosphere. Int. J. Miner. Metall. Mater., 2023, 30(11): 2169

[7]

S. Liu, H.R. Fan, D.I. Groves, K.F. Yang, Z.F. Yang, and Q.W. Wang, Multiphase carbonatite-related magmatic and metasomatic processes in the genesis of the ore-hosting dolomite in the giant Bayan Obo REE–Nb–Fe deposit, Lithos, 354–355(2020), art. No. 125985.

[8]

LiuTT, SongWL, KynickyJ, YangJK, ChenQ, TangHY. Automated quantitative characterization REE ore mineralogy from the giant Bayan Obo deposit, Inner Mongolia, China. Minerals, 2022, 12(4): 426

[9]

H.D. She, H.R. Fan, K.F. Yang, et al., Complex, multi-stage mineralization processes in the giant Bayan Obo REE–Nb–Fe deposit, China, Ore Geol. Rev., 139(2021), art. No. 104461.

[10]

C. Nie, J.B. Jiang, J.S. Deng, K.N. Li, L.X. Jia, and T.C. Sun, Predicting TFe content and sorting iron ores from hyperspectral image by variational mode decomposition-based spectral feature, J. Clean. Prod., 429(2023), art. No. 139629.

[11]

NagarajD. The chemistry and application of chelating or complexing agents in minerals separations. Reagents in Mineral Technology, 2018, London, Routledge: 257

[12]

XieF, ZhangTA, DreisingerD, DoyleF. A critical review on solvent extraction of rare earths from aqueous solutions. Miner. Eng., 2014, 56: 10

[13]

SaturJV, CalabiaBP, HoshinoM, et al.. Flotation of rare earth minerals from silicate–hematite ore using tall oil fatty acid collector. Miner. Eng., 2016, 89: 52

[14]

AndersonCDImproved Understanding of Rare Earth Surface Chemistry and Its Spplication to Froth Flotation, 2015, Golden, Colorado School of Mines

[15]

H. Duan, W.G. Liu, X.Y. Wang, et al., Investigation on flotation separation of bastnaesite from calcite and barite with a novel surfactant: Octylamino-bis-(butanohydroxamic acid), Sep. Purif. Technol., 256(2021), art. No. 117792.

[16]

JordensA, ChengYP, WatersKE. A review of the beneficiation of rare earth element bearing minerals. Miner. Eng., 2013, 41: 97

[17]

RenJ, SongSX, Lopez ValdiviesoA, LuSC. Selective flotation of bastnaesite from monazite in rare earth concentrates using potassium alum as depressant. Int. J. Miner. Process., 2000, 59(3): 237

[18]

Z.J. Wang, H.Q. Wu, J. Yang, et al., Selective flotation separation of bastnaesite from calcite using xanthan gum as a depressant, Appl. Surf. Sci., 512(2020), art. No. 145714.

[19]

ChangS, LiM, GaoK, ZhangDL, et al.. Mechanism of phthalic acid collector in flotation separation of fluorite and rare earth. J. Rare Earths., 2022, 40(1): 118

[20]

Y. Zhou, J.X. Liu, G.J. Cheng, X.X. Xue, and H. Fang, Carbothermal reduction followed by sulfuric acid leaching of Bayan Obo tailings for selective concentration of iron and rare earth metals, Sep. Purif. Technol., 271(2021), art. No. 118742.

[21]

ZhengQ, WuWY, BianX. Investigations on mineralogical characteristics of rare earth minerals in Bayan Obo tailings during the roasting process. J. Rare Earths, 2017, 35(3): 300

[22]

ZhangQ, SunYS, HanYX, LiYJ, GaoP. Reaction behavior and non-isothermal kinetics of suspension magnetization roasting of limonite and siderite. Int. J. Miner. Metall. Mater., 2023, 30(5): 824

[23]

WangRF, GaoP, YuanS, LiYJ, LiuYZ, HuangC. Precise regulation of the phase transformation for pyrolusite during the reduction roasting process. Int. J. Miner. Metall. Mater., 2024, 31(1): 81

[24]

J.L. Ning, P. Gao, S. Yuan, Y.X. Han, Y.S. Sun, and W.B. Li, Highly efficient and green separation of iron from complex low-grade polymetallic ore via hydrogen-based mineral phase transformation, Powder Technol., 433(2024), art. No. 119177.

[25]

J.L. Ning, P. Gao, S. Yuan, Y.X. Han, Y.S. Sun, and W.B. Li, Green approach for separating iron and rare earths from complex polymetallic solid residues via hydrogen-based mineral phase transformation: A pilot-scale study, Sep. Purif. Technol., 350(2024), art. No. 128006.

[26]

Q. Zhang, Y.S. Sun, P. Gao, and Y.X. Han, Hydrogen-based mineral phase transformation of bastnaesite: Detailed assessment of physicochemical properties and flotation behavior, Chem. Eng. J., 500(2024), art. No. 156992.

[27]

ZhangQ, SunYS, HanYX, GaoP, LiWB. Isothermal and non-isothermal decomposition mechanisms of bastnaesite during the hydrogen-based mineral phase transformation. Int. J. Hydrogen Energy, 2024, 68: 929

[28]

Q. Zhang, Y.S. Sun, Y.X. Han, P. Gao, W.B. Li, and Z. Bai, Pyrolysis behavior of bastnaesite in an air environment: Thermodynamics, phase transition and kinetics, J. Taiwan Inst. Chem. Eng., 152(2023), art. No. 105188.

[29]

ZhangQ, SunYS, HanYX, GaoP, LiWB. Pyrolysis mechanism of bastnaesite during roasting in N2 atmosphere: An in situ study of gas products, phase transition, and kinetics. J. Ind. Eng. Chem., 2023, 124: 381

[30]

LiuWP, WangXM, MillerJD. Collector chemistry for bastnaesite flotation–recent developments. Miner. Process. Extr. Metall. Rev., 2019, 40(6): 370

[31]

ZhangX, DuH, WangX, MillerJD. Surface chemistry considerations in the flotation of rare-earth and other semisoluble salt minerals. Min. Metall. Explor., 2013, 30(1): 24

[32]

LiM, GaoK, ZhangDL, DuanHJ, MaLL, HuangL. The influence of temperature on rare earth flotation with naphthyl hydroxamic acid. J. Rare Earths, 2018, 36(1): 99

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