The Use of Process Analysis and Simulation to Identify Paths to Improve the Operation of an Iron Ore Gravity Concentration Circuit
- 1 Hatch Ltd., Montréal, QC, Canada
- 2 Department of Mining, Metallurgy and Materials Engineering, Laval University, Quebec, QC, Canada
Abstract
The processing of iron ore to recover the valuable iron oxide minerals is commonly carried out using spiral concentrators that separate valuable minerals from non-valuable ones on the basis of the specific gravity of minerals. This paper shows that the analysis of the operation of spirals should not only focus on the minerals (as it is usually the case), but should also consider the particle size of these minerals. Indeed, the sampling of two industrial iron ore circuits and the data processing of the resulting measurements show that unexpectedly about 10% of the coarse heavy iron oxide minerals are not recovered by the spirals of the two circuits. Tests conducted by an independent research center confirm this plant observation. The pilot plant tests also show that the wash water flowrate addition may adversely affect the recovery of coarse heavy mineral particles. A mathematical model for the spiral was implemented into a simulator for an iron ore gravity concentration circuit. The simulator shows a potential 0.7% increase of iron recovery by simply changing the strategy used to distribute the wash water between the rougher and the cleaner/recleaner spirals of the circuit. The simulator also shows that the introduction of a hydraulic classifier into the gravity concentration circuit yields a marginal improvement to the performances of the circuit.
- Damjanovic, B. and Goode, J.R. (2000) Canadian Milling Practice, Special Vol. 49. Canadian Institute of Mining, Metallurgy and Petroleum, Montreal.
- Wills, B. (1992) Mineral Processing Technology: An Introduction to the Practical Aspects of Ore Treatment and Mineral Recovery. Pergamon Press, Oxford, New York, 855 p.
- Das, S.K., Godiwalla, K.M., Panda, L., Bhattacharya, K.K., Signh, R. and Mehrotra, S.P. (2007) Mathematical Modeling of Separation Characteristics of a Coal-Washing Spiral. International Journal of Mineral Processing, 84, 184-132. https://doi.org/10.1016/j.minpro.2007.05.007
- Tripathy, S.K. and Murthy, Y.R. (2012) Modelling and Optimization of Spiral Concentrator for Separation of Ultrafine Chromite. Powder Technology, 221, 387-394. https://doi.org/10.1016/j.powtec.2012.01.035
- Srivastava, M.P., Pan, S.K., Prasad, N. and Mishra, B.K. (2001) Characterization and Processing of Iron Fines of Kiriburu Deposit of India. International Journal of Mineral Processing, 61, 93-107. https://doi.org/10.1016/S0301-7516(00)00030-2
- Sadeghi, M., Bazin, C. and Renaud, M. (2014) Effect of Wash Water on the Mineral Size Recovery Curves in a Spiral Concentrator Used for Iron Ore Processing. International Journal of Mineral Processing, 129, 22-26. https://doi.org/10.1016/j.minpro.2014.04.006
- Bazin, C., Sadeghi, M. and Renaud, M. (2016) An Operational Model for a Spiral Classifier. Minerals Engineering, 91, 74-85. https://doi.org/10.1016/j.mineng.2015.09.024
- Burt, R.O. (1984) Gravity Concentration Technology. Elsevier, Amsterdam, 336 p.
- Mishra, B.K. and Tripathy, A. (2010) A Preliminary Study of Particle Separation in Spiral Concentrators Using DEM. International Journal of Mineral Processing, 94, 192-195. https://doi.org/10.1016/j.minpro.2009.12.005
- Bazin, C., Sadeghi, M., Bourassa, M., Roy, P., Lavoie, F., Cataford, D., Rochefort, C. and Gosselin, C. (2014) Size Recovery Curves of Minerals in Industrial Spirals for Processing Iron Oxide Ores. Minerals Engineering, 65, 115-123. https://doi.org/10.1016/j.mineng.2014.05.012
- Lavoie, F. (2019) Bloom Lake Flowsheet Assessment, One Year into Operation. The CIM General Meeting, Montreal, May 2019, 1-14.
- Hodouin, D. and Everell, M.D. (1980) A Hierarchical Procedure for Adjustment and Material Balancing of Mineral Processes Data. International Journal of Mineral Processing, 7, 91-116. https://doi.org/10.1016/0301-7516(80)90002-2