Iron Recovery from Bauxite Residue Through Reductive Roasting and Wet Magnetic Separation
Tóm tắt
Từ khóa
Tài liệu tham khảo
Pontikes Y (2005) Red mud: production. http://redmud.org (2005). Accessed 13 May 2018
Balomenos E, Panias D, Paspaliaris I (2011) Energy and exergy analysis of the primary aluminium production processes—a review on current and future sustainability. Miner Process Extr Metall Rev 32:1–21
Evans K (2016) The history, challenges, and new developments in the management and use of bauxite residue. J Sustain Metall 2(4):316–331. https://doi.org/10.1007/s40831-016-0060-x
Li LY (2001) A study of iron mineral transformation to reduce red mud tailings. Waste Manag 21:525–534
Bánvölgyi G, Huan TM (2010) De-watering, disposal and utilization of red mud: state of the art and emerging technologies. TRAVAUX 35:431–443
Balomenos E, Davris P, Pontikes Y, Panias D (2017) Mud2Metal: lessons learned on the path for complete utilization of bauxite residue through industrial symbiosis. J Sustain Metall 3(3):551–560. https://doi.org/10.1007/s40831-016-0110-4
Kumar RS, Premchand JP (1998) Utilization of iron values of red mud for metallurgical applications. Environ Waste Manag. https://doi.org/10.13140/RG.2.1.2077.7446
Bonomi C, Cardenia C, Tam P, Panias D (2016) Review of technologies in the recovery of iron, aluminium, titanium and rare earth elements from bauxite residue (red mud). In: Proceedings of 3rd International Symposium on Enhanced Landfill Mining (ELFM III), Lisbon, Portugal
Borra CR, Blanpain B, Pontikes Y, Binnemans K, Van Gerven T (2016) Recovery of rare earths and other valuable metals from bauxite residue (red mud): a review. J Sustain Metall 2:365–386. https://doi.org/10.1007/s40831-016-0068-2
Liu Z, Li H (2015) Metallurgical process for valuable elements recovery from red mud—a review. Hydrometallurgy 155:29–43
Xenidis A, Zografidis C, Kotsis I, Boufounos D (2009) Reductive roasting and magnetic separation of Greek bauxite residue for its utilization in iron ore industry. In: Light metals 2009, The Minerals Metals & Materials Society, San Francisco, pp 63–67
Balomenos E, Kemper C, Diamantopoulos P, Panias D, Paspaliaris I, Friedrich B (2013) Novel technologies for enhanced energy and exergy efficiencies in primary aluminium production industry. In: Proceedings of the First Metallurgical & Materials Engineering Congress of South-East Europe, pp 85–91
Borra CR, Blanpain B, Pontikes Y, Binnemans K, Van Gerven T (2016) Smelting of bauxite residue (red mud) in view of iron and selective rare earths recovery. J Sustain Metall 2:28–37. https://doi.org/10.1007/s40831-015-0026-4
Liu Y, Naidu R (2014) Hidden values in bauxite residue (red mud): recovery of metals. Waste Manag 34:2662–2673
Binnemans K, Jones PT, Blanpain B, Van Gerven T, Pontikes Y (2015) Towards zero-waste valorisation of rare-earth-containing industrial process residues: a critical review. J Clean Prod 99:17–38. https://doi.org/10.1016/j.jclepro.2015.02.089
Sajó IE (2005) XDB powder diffraction phase analytical system, Version 3.0, User’s Guide, Budapest
Földvári M (2011) Handbook of thermogravimetric system of minerals and its use in geological practice. Occasional Papers of the Geological Institute of Hungary, vol 213
Li C, Suna H, Baic J, Lia L (2010) Innovative methodology for comprehensive utilization of iron ore tailings. Part 1: the recovery of iron from iron ore tailings using magnetic separation after magnetizing roasting. J Hazard Mater 174:71–77