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Thermal behaviors and growth of reduced ferronickel particles in carbon-laterite composites

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Abstract

The thermal behaviors of single laterite ore and graphite-laterite mixtures were investigated by thermogravimetry (TG), derivative thermogravimetry (DTG), and differential thermal analysis (DTA). Four mass loss steps maximized at about 78, 272, 583, and 826°C are observed for the laterite ore, representing the vaporization of free water, the dehydroxylation of goethite, the decomposition of serpentines, and the second dehydroxylation of serpentines, respectively. The reduction reactions of the graphite-laterite mixtures start at around 700°C and can be divided into three major temperature regions. Coal-laterite composites with an addition of 10 wt.% CaO were roasted at 1100–1350°C for 30 min, and the reduced samples were characterized by X-ray diffraction (XRD) and scanning electron microscopy (SEM). The results indicate that the reduction reactions proceed more completely at higher temperatures. The growth of the reduced ferronickel particles is greatly influenced by the roasting temperature. Obvious growth of the reduced ferronickel particles appears with the formation of worm-like crystals for the sample reduced at 1250°C, and spheric particles are observed for the sample reduced at 1300°C. When the reduction temperature increases to 1350°C, the reduced ferronickel particles agglomerate to ferronickel granules of 3–8 mm in diameter. The main elements in the granules include iron, nickel, chromium, carbon, and sulfur, with the content of nickel and that of iron of 9.08 wt.% and 85.21 wt.%, respectively.

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References

  1. Dalvi A.D., Bacon W.G., and Osbourne R.C., The past and the future of nickel laterites, [in] PDAC 2004 International Conference Trade Show and Investors Exchange, Toronto, 2004: 27.

  2. Kim J., Dodbiba G., Tanno H., Okaya K., Matsuo S., and Fujita T., Calcination of low-grade laterite for concentration of Ni by magnetic separation, Miner. Eng., 2010, 23(4): 282.

    Article  CAS  Google Scholar 

  3. Lee H.Y., Kim S.G., and Oh J.K., Electrochemical leaching of nickel from low-grade laterites, Hydrometallurgy, 2005, 77(3–4): 263.

    Article  CAS  Google Scholar 

  4. Nayak J.C., Production of ferro-nickel from sukinda laterites in rotary kiln-electric furnace, Trans. Indian Inst. Metall., 1985, 38(3): 241.

    CAS  Google Scholar 

  5. Wamer A.E.M., Dfaz C.M., Dalvi A.D., Mackey P.J., and Tarasov A.V., JOM world nonferrous smelter survey, Part III: Nickel: Laterite, JOM, 2006(4): 11.

  6. McDonald R.G. and Whittington B.I., Atmospheric acid leaching of nickel laterites review: Part I. Sulphuric acid technologies, Hydrometallurgy, 2008, 91(1–4): 35.

    Article  CAS  Google Scholar 

  7. Kaya Ş. and Topkaya Y.A., High pressure acid leaching of a refractory lateritic nickel ore, Miner. Eng., 2011, 24(11): 1188.

    Article  CAS  Google Scholar 

  8. Valix M. and Cheung W.H., Effect of sulfur on the mineral phases of laterite ores at high temperature reduction, Miner. Eng., 2002, 15(7): 523.

    Article  CAS  Google Scholar 

  9. Power L.F. and Geiger G.H., The application of the reduction roast-ammoniacal ammonium carbonate leach to nickel latenites, Miner. Sci., 1997, 9(1): 32.

    Google Scholar 

  10. Georgiou D. and Papangelakis V.G., Sulphuric acid pressure leaching of a limonitic laterite: chemistry and kinetics, Hydrometallurgy, 1998, 49(1–2): 23.

    Article  CAS  Google Scholar 

  11. Guo X.Y., Li D., Park K.H., Tian Q.H., and Wu Z., Leaching behavior of metals from a limonitic nickel laterite using a sulfation-roasting-leaching process, Hydrometallurgy, 2009, 99(3–4): 144.

    Article  CAS  Google Scholar 

  12. Watanabe T., Ono S., Arai H., and Matsumori T., Direct reduction of gamierite ore for production of ferronickel with a rotary kiln at Nippon Yakin Co. Ltd. Oheyama Works, Int. J. Miner. Process., 1987, 19: 173.

    Article  CAS  Google Scholar 

  13. Matsumori T., Ishizuka T., and Matsuda T., An economical smelting method of ferro-nickel as raw material of stainless steel, Metall. Rev. MMIJ, 1996, 13(1): 144.

    CAS  Google Scholar 

  14. Carlson L. and Schwertmann U., Natural ferrihydrites in surface deposits from Finland and their association with silica, Geochim. Cosmochim. Acta, 1981, 45: 421.

    Article  CAS  Google Scholar 

  15. Swamy Y.V., Kar B.B., and Mohanty J.K., Physico-chemical characterization and sulphatization roasting of low-grade nickeliferous laterites, Hydrometallurgy, 2003, 69(1–3): 89.

    Article  CAS  Google Scholar 

  16. Valix M. and Cheung W.H., Study of phase transformation of laterite ores at high temperature, Miner. Eng., 2002, 15(8): 607.

    Article  CAS  Google Scholar 

  17. Brindley G.W. and Wan H.M., Compositions, structures, and thermal behavior of nickel-containing minerals in the lizarditenepouite series, American Mineralogist, 1975, 60: 863.

    CAS  Google Scholar 

  18. Tartaj P., Cerpa A., García-González M.T., and Serna C.J., Surface instability of serpentine in aqueous suspensions, J. Colloid Interf. Sci., 2000, 231, 176.

    Article  CAS  Google Scholar 

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Correspondence to Jianliang Zhang.

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Huang, D., Zhang, J., Mao, R. et al. Thermal behaviors and growth of reduced ferronickel particles in carbon-laterite composites. Rare Metals 30, 681–687 (2011). https://doi.org/10.1007/s12598-011-0449-4

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  • DOI: https://doi.org/10.1007/s12598-011-0449-4

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