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Investigation of quartz flotation from decarburized vanadium bearing coal

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Języki publikacji
EN
Abstrakty
EN
Ether diamine (Fm 2835-2L) was used as a collector for flotation of quartz. It allows flotation of quartz from mica and calcite. The adsorption mechanism of Fm 2835-2L on quartz was investigated by flotation tests, zeta-potential measurements and infra-red (FTIR) spectra measurements. Results show that Fm 2835-2L adsorbs on the quartz surface in physical adsorption with no new products, changing its zeta potentials, and increasing its hydrophobicity. The effect of calcium ions on flotation of quartz was investigated by flotation tests and zeta-potential measurements. Results show that under neutral or weakly acidic conditions calcium cation can adsorb onto the surfaces of quartz, increase the zeta potential of quartz particles, which in turn causes weaker aggregation of quartz particles and lower flotation recovery of quartz. Under the alkaline conditions the hydrolytic components of calcium are also adsorbed on the quartz surface and increase the zeta potential of quartz particles, which causes stronger aggregation of quartz particles and higher flotation recovery of quartz. However, the hydrolytic components such as CaOH+, Ca(OH)2(aq) and Ca(OH)2(s) were not formed in significant amounts in the best flotation tests.
Słowa kluczowe
Rocznik
Strony
755--767
Opis fizyczny
Bibliogr. 22 poz., rys., tab.
Twórcy
autor
  • College of Resources and Environment Engineering, Wuhan University of Technology, Wuhan 430070, China
autor
  • College of Resources and Environment Engineering, Wuhan University of Technology, Wuhan 430070, China
autor
  • College of Resources and Environment Engineering, Wuhan University of Technology, Wuhan 430070, China
autor
  • College of Resources and Environment Engineering, Wuhan University of Technology, Wuhan 430070, China
autor
  • College of Resources and Environment Engineering, Wuhan University of Technology, Wuhan 430070, China
Bibliografia
  • BIAN, Y., 2014, Mineralogy Process and Pre-concentration Technology of Mica-type Vanadium-bearing Stone Coal, Wuhan University of Technology, Thesis, pp56.
  • EJTEMAEIA, M., IRANNAJAD, M., GHARABAGHI, M, 2012, Role of dissolved mineral species in selective flotation of smithsonite from quartz using oleate as collector, Int. J.Miner. Process. 114–117, 40–47.
  • FAN, X.; ROWSON, N. A., 2000, The effect of Pb(NO3)2 on ilmenite flotation, Miner. Eng. 13, 105–115.
  • FORMASIERO, D., RALSTON, J., 2005, Cu(II) and Ni(II) activation in the flotation of quartz, lizardite and chlorite. Int. J. Miner. Process. 76, 75–81.
  • FUERSTENAU, M. C., Han, K. N., 2002, Metal–Surfactant Precipitation and Adsorption in Froth Flotation, J. Colloid Interface Sci. 256, 175–182.
  • LEV, O. F., AGATHE, D., INNA, V. F., 2012, Selective flotation of silicates and Ca-bearing minerals: the role of non-ionic reagent on cationic flotation, Int. J. Miner. Process. 314–323.
  • LIU, W. G., WEI, D. Z., CUI, B. Y., 2011, Collecting performances of N-dodecylethylene-diamine and its adsorption mechanism on mineral surface, Trans. Nonferrous Met. Soc. China 21, 1155-1160.
  • MA, M., BRUCKARD W. J., HOLMES, R., 2009, Effect of collector, pH and ionic strength on the cationic flotation of kaolinite, Int. J. Miner. Process. 93, 54–58.
  • NI, H., HUANG, G., YUAN, A. W., WANG, X., ZHOU, X. Y., 2010, Comprehensive utilization technology for low grade stone coal containing vanadium, Chin. J. Nonferrous Met. 62, 92–95.
  • SCOTT, J. L., SMITH, R. W., 1991, Diamine flotation of quartz, Miner. Eng. 4, 141–150.
  • SMITH, R. W., SCOTT, J. L., 1990, Mechanisms of dodecylamine flotation of quartz, Miner. Process. Extr. Metall. Rev. 7, 81–94.
  • VIDYADHAR, A., HANUMANTHA RAO, K., 2007, Adsorption mechanism of mixed cationic/anionic collectors in feldspar-quartz flotation system, J. Colloid Interface Sci. 306, 195–204.
  • WANG, D. Z., HU, Y. H., 1987, Solution chemistry of flotation, Hunan Science and Technology Press, 134–143.
  • WANG, L., SUN, W., HU, Y. H., XU, L. H., 2014, Adsorption mechanism of mixed anionic/cationic collectors in Muscovite-Quartz flotation system, Miner. Eng. 64, 44–50.
  • WANG, Y. H., YU, F. S., 2007, Effects of metallic ions on the flotation of spodumene and beryl, J. China Univ. Min. Technol. 17, 0035–0039.
  • WU, H. L., ZHAO, W., LI, M. T., DENG, Z. G., GE, H. W., WEI, C., 2008, New craft study on enriching vanadium by means of priority coal flotation from high carbon stone coal, J. Chin. Rare Earth Soc. 26, 530–533.
  • XIE, X. Z., 2011, Study on the Separation of Limonite from Gangues by Flotation and Its Mechanisms, Central South University, Thesis, pp39–43.
  • XU, L. H., WU, H. Q., DONG, F. Q., 2013, Flotation and adsorption of mixed cationic/anionic collectors on muscovite mica, Miner. Eng. 41–45.
  • ZHAO, Y. L., ZHANG, Y. M., LIU, T., CHEN, T. J., BIAN, Y., BAO, S. X., 2013, Pre-concentration of vanadium from stone coal by gravity separation, Int. J. Miner. Process. 121, 1–5.
  • ZHAO, Y. L., ZHANG, Y. M., BAO, S. X., LIU, T., BIAN, Y., LIU, X., JIANG, M. F., 2013, Separation factor of shaking table for vanadium pre-concentration from stone coal, Sep. Purif. Technol. 115, 92–99.
  • ZHU, Y. G., ZHANG, G. F., FENG, Q. M., YAN, D. C., WANG, W. Q., 2012, Effect of surface dissolution on flotation separation of fine ilmenite from titanaugite, Trans.Nonferrous Met. Soc. China 21, 1149–1154.
  • ZHANG, J., WANG, W. Q., LIU, J., HUANG, Y., FENG, Q. M., ZHAO, H., 2014, Fe(III) as an activator for the flotation of spodumene, albite, and quartz minerals, Miner. Eng. 61, 16–22.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e19db18d-a935-40b2-b122-e6557df7c9a4
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