Separation of Kaolinite from Ion-Adsorption Rare Earth Tailings in Southern China and Iron Removal Treatment
- 1 School of Materials Science and Engineering, Jingdezhen Ceramic Institute, Xianghu, Jingdezhen, China
- 2 School of Materials Science and Engineering, Jingdezhen Ceramic Institute, Xianghu, Jingdezhen, China
- 3 School of Materials Science and Engineering, Jingdezhen Ceramic Institute, Xianghu, Jingdezhen, China
- 4 School of Materials Science and Engineering, Jingdezhen Ceramic Institute, Xianghu, Jingdezhen, China
- 5 School of Materials Science and Engineering, Jingdezhen Ceramic Institute, Xianghu, Jingdezhen, China
Abstract
Several hundred million tons of ion-adsorption rare earth tailings exist in Ganzhou, Southern China, which is a severe environmental hazard. To reduce and reutilize the tailing, kaolinite has been separated from the tailings by mechanical separation in laboratory scale and pilot scale. The results show that the tailing is mainly composed of fine kaolinite and coarse quart. Quartz and kaolinite can be separated by sieves, shaker, spiral chute or hydrocyclone, which has the similar results in laboratory scale and pilot scale. 30.2% of the tailings can be re-sourced and applied in ceramic industries. 41.7% of kaolinite can be obtained after sorting and iron removal by magnetic separator in pilot scale, which can be applied in ceramic industries according to the Chinese national standard (TC-3). The results give a progressive solution to re-source the tailings economically.
- Su, W. (2009) Economic and Policy Analysis of China’s Rare Earth Industry (in Chinese). China Financial and Economic Publishing House, Beijing.
- Chen, Z. (2011) Global Rare Earth Resources and Scenarios of Future Rare Earth Industry. Journal of Rare Earths, 29, 1-6. http://dx.doi.org/10.1016/S1002-0721(10)60401-2
- Yang, X. (2013) China’s Ion-Adsorption Rare Earth Resources, Mining Consequences and Preservation. Environmental Development, 8, 131-136. http://dx.doi.org/10.1016/j.envdev.2013.03.006
- Wübbeke, J. (2013) Rare Earth Elements in China: Policies and Narratives of Reinventing an Industry. Resources Policy, 38, 384-394. http://dx.doi.org/10.1016/j.resourpol.2013.05.005
- Chen, L. (2011) Effect of Magnetic Field Orientation on High Gradient Magnetic Separation Performance. Minerals Engineering, 24, 88-90. http://dx.doi.org/10.1016/j.mineng.2010.09.019
- Svoboda, J. and Fujita, T. (2003) Recent Developments in Magnetic Methods of Material Separation. Minerals Engineering, 16, 785-792. http://dx.doi.org/10.1016/S0892-6875(03)00212-7
- Grimshaw, R.W. (1971) Physics and Chemistry of Clay. 4th Edition, Ernest Benn, London.
- Chandrasekhar, S. and Ramaswamy, S. (2006) Iron Minerals and Their Influence on the Optical Properties of Two Indian Kaolins. Applied Clay Science, 33, 269-277. http://dx.doi.org/10.1016/j.clay.2006.06.008
- Malengreau, N., Bedidi, A., Muller, J.P. and Herbillions, A.J. (1996) Spectroscopic Control of Iron Oxide Dissolution in Two Ferralitic Soils. European Journal of Soil Science, 47, 13-20. http://dx.doi.org/10.1111/j.1365-2389.1996.tb01367.x
- Santos, E., Scorzelli, R.B., Bertolino, L.C., Alves, O.C. and Munayco, P. (2012) Characterization of Kaolin from the Capim River Region—Brazil. Applied Clay Science, 55, 164-167. http://dx.doi.org/10.1016/j.clay.2011.11.009
- Chandrasekhar, S. and Ramaswamy, S. (2007) Investigation on a Gray Kaolin from South East India. Applied Clay Science, 37, 32-46. http://dx.doi.org/10.1016/j.clay.2006.11.007
- Xia, G., Lu M, Su, X. and Zhao, X. (2012) Iron Removal from Kaolin Using Thiourea Assisted by Ultrasonic Wave. Ultrasonics Sonochemistry, 19, 38-42. http://dx.doi.org/10.1016/j.ultsonch.2011.05.008
- Zegeye, A., Yahaya, S., Fialips, C.I., White, M.L., Gray, N.D. and Manning, D.A.C. (2013) Refinement of Industrial Kaolin by Microbial Removal of Iron-Bearing Impurities. Applied Clay Science, 86, 47-53. http://dx.doi.org/10.1016/j.clay.2013.08.041