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Research Article

The influence of coal particle shapes on the interaction behavior of air bubbles and coal particles

ORCID Icon, ORCID Icon, , , &
Pages 3836-3849 | Received 10 Jan 2022, Accepted 12 Apr 2022, Published online: 03 May 2022

References

  • Albijanic, B., O. Ozdemir, A. V. Nguyen, and D. Bradshaw. 2010. A review of induction and attachment times of wetting thin films between air bubbles and particles and its relevance in the separation of particles by flotation. Advances in Colloid and Interface Science 159 (1):1–21. doi:10.1016/j.cis.2010.04.003.
  • FIinch, J. A., and C. A. Hardie. 1999. An example of innovation from the waste management industry: Deinking flotation cells. Minerals Engineering 12 (5):467–75. doi:10.1016/S0892-6875(99)00030-8.
  • Hans-JürgenButt, and H.-J. Butt. 1994. A technique for measuring the force between a colloidal particle in water and a bubble. Journal of Colloid and Interface Science 166 (1):109–17. doi:10.1006/jcis.1994.1277.
  • Hassas, B. V., H. Caliskan, O. Guven, F. Karakas, M. Cinar, and M. S. Celik. 2016. Effect of roughness and shape factor on flotation characteristics of glass beads. Colloids and Surfaces a-Physicochemical and Engineering Aspects 492:88–99. doi:10.1016/j.colsurfa.2015.12.025.
  • Hewitt, D., D. Fornasiero, and J. Ralston. 1994. Bubble particle attachment efficiency. Minerals Engineering 7 (5–6):5–6. doi:10.1016/0892-6875(94)90097-3.
  • Krasowska, M., S. L. Carnie, D. Fornasiero, and J. Ralston. 2011. Ultrathin wetting films on hydrophilic titania Surfaces: equilibrium and dynamic behavior. Journal of Physical Chemistry C 115 (22):11065–76. doi:10.1021/jp200387w.
  • Leroy, S., G. Dislaire, D. Bastin, and E. Pirard. 2011. Optical analysis of particle size and chromite liberation from pulp samples of a UG2 ore regrinding circuit. Minerals Engineering 24 (12):1340–47. doi:10.1016/j.mineng.2011.06.006.
  • Ma, G. X., W. C. Xia, and G. Y. Xie. 2018. Effect of particle shape on the flotation kinetics of fine coking coal. Journal of Cleaner Production 195:470–75. doi:10.1016/j.jclepro.2018.05.230.
  • Manor, O., I. U. Vakarelski, G. W. Stevens, F. Grieser, R. R. Dagastine, and D. Y. C. Chan. 2008a. Dynamic forces between bubbles and surfaces and hydrodynamic boundary conditions. Langmuir 24 (20):11533–43. doi:10.1021/la802206q.
  • Manor, O., I. U. Vakarelski, X. S. Tang, S. J. O’Shea, G. W. Stevens, F. Grieser, R. R. Dagastine, and D. Y. C. Chan. 2008b. Hydrodynamic boundary conditions and dynamic forces between bubbles and surfaces. Physical Review Letters 101(2). ARTN 024501 doi:10.1103/PhysRevLett.101.024501.
  • Nguyen, A. V., and G. M. Evans. 2004. Attachment interaction between air bubbles and particles in froth flotation. Experimental Thermal and Fluid Science 28 (5):381–85. doi:10.1016/j.expthermflusci.2002.12.001.
  • Nguyen, A. V., G. M. Evans, J. Nalaskowski, and J. D. Miller. 2004. Hydrodynamic interaction between an air bubble and a particle: Atomic force microscopy measurements. Experimental Thermal and Fluid Science 28 (5):387–94. doi:10.1016/j.expthermflusci.2003.01.001.
  • Nguyen, A. V., J. Nalaskowski, and J. D. Miller. 2003. A study of bubble-particle interaction using atomic force microscopy. Minerals Engineering 16 (11):1173–81. doi:10.1016/j.mineng.2003.07.013.
  • Nguyen, A. V., H. J. Schulze, and J. Ralston. 1999. Elementary steps in particle—bubble attachment. International Journal of Mineral Processing 51 (1–4):183–95. doi:10.1016/S0301-7516(97)00030-6.
  • Pourghahramani, P., and E. Forssberg. 2005. Review of applied particle shape descriptors and produced particle shapes in grinding environments. part II: the influence of comminution on the particle shape. Mineral Processing and Extractive Metallurgy Review 26 (2):167–86. doi:10.1080/08827500590912103.
  • Preuss, M., and H.-J. Butt. 1998. Direct measurement of particle−bubble interactions in aqueous electrolyte:  dependence on surfactant. Langmuir 14 (12):3164–74. doi:10.1021/la971349b.
  • Ralston, J., S. S. Dukhin, and N. A. Mishchuk. 2002. Wetting film stability and flotation kinetics. Advances in Colloid and Interface Science 95 (2–3):145–236. doi:10.1016/S0001-8686(00)00083-X.
  • Ralston, J., D. Fornasiero, and N. Mishchuk. 2001. The hydrophobic force in flotation-a critique. Colloids and Surfaces a-Physicochemical and Engineering Aspects 192 (1–3):39–51.
  • Rubio, J., M. L. Souza, and R. W. Smith. 2002. Overview of flotation as a wastewater treatment technique. Minerals Engineering 15 (3):139–55. doi:10.1016/S0892-6875(01)00216-3.
  • Wen, B. F., and W. C. Xia. 2017. Effect of particle shape on coal flotation. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 39 (13):1390–94. doi:10.1016/S0301-7516(97)00030-6.
  • Xing, Y. W., X. H. Gui, L. Pan, B. E. Pinchasik, Y. J. Cao, J. T. Liu, M. Kappl, and H. J. Butt. 2017. Recent experimental advances for understanding bubble-particle attachment in flotation. Advances in Colloid and Interface Science 246:105–32. doi:10.1016/j.cis.2017.05.019.
  • Yekeler, M., U. Ulusoy, and C. Hiçyılmaz. 2004. Effect of particle shape and roughness of talc mineral ground by different mills on the wettability and floatability. Powder Technology 140 (1–2):68–78. doi:10.1016/j.powtec.2003.12.012.
  • Yoon, R.-H. 2000. The role of hydrodynamic and surface forces in bubble–particle interaction. International Journal of Mineral Processing 58 (1–4):1–4. doi:10.1016/S0301-7516(99)00071-X.
  • Yoon, R. H., G. Soni, K. W. Huang, S. Park, and L. Pan. 2016. Development of a turbulent flotation model from first principles and its validation. International Journal of Mineral Processing 156:43–51. doi:10.1016/j.minpro.2016.05.009.
  • Zhang, X. R., R. Manica, P. Tchoukov, Q. X. Liu, and Z. H. Xu. 2017. Effect of approach velocity on thin liquid film drainage between an air bubble and a flat solid surface. Journal of Physical Chemistry C 121 (10):5573–84. doi:10.1021/acs.jpcc.6b11502.

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