Transverse mixing of binary solid materials in a rotating kiln

被引:0
|
作者
Chen H. [1 ]
Xiao Y.-G. [1 ]
Zhao X.-Q. [1 ]
Liu Y. [1 ]
Liu Y.-L. [1 ]
机构
[1] State Key Laboratory of High Performance Complex Manufacturing, Central South University, Changsha
关键词
Condensation; Mixing; Percolation; Rotary kilns; Solid materials;
D O I
10.13374/j.issn2095-9389.2016.02.006
中图分类号
学科分类号
摘要
In order to investigate the effect of particle size difference and density difference on the mixing mechanism of binary granular materials within a rotating kiln, a kinematic model of particles was established using the discrete element method, and the transverse mixing process of granular materials in the rolling regime within the rotating kiln was simulated. The mixing index was defined by contact-number between particles, and the effects of particle volume ratio and density ratio on the mixing index were analyzed using Hong's theory: competition between percolation and condensation. The results show that the percolation mechanism improves with increasing volume ratio σ between particles, but the condensation mechanism improves with increasing density ratio η. Segregation will occur in the radial direction of the rotating kiln no matter percolation or condensation plays the leading role resulting in the decrease of mixing degree. Percolation and condensation can balance each other for some reasonable particle volume and density combinations, where the binary granular materials could get uniformly mixed. There is a power function relationship between particle volume ratio and density ratio when percolation and condensation balance each other. © All right reserved.
引用
收藏
页码:194 / 199
页数:5
相关论文
共 21 条
  • [1] Gao H.L., Chen Y.C., Zhao Y.Z., Et al., Simulation of mixing process for size-type binary wet particulate system in a rotating horizontal drum by discrete element method, Acta Phys Sin, 60, 12, (2011)
  • [2] Huang A.N., Kuo H.P., A study of the three-dimensional particle size segregation structure in a rotating drum, AIChE J, 58, 4, (2012)
  • [3] Chen W.Z., Wang C.H., Calculation of mean residence time of solids in Carbon rotary kilns, J Northeast Univ Nat Sci, 31, 9, (2010)
  • [4] Gao C.F., Yue K., Jiang Z.Y., Et al., Numerical model of heat and mass transfer of sintering in an alumina clinker rotary kiln, J Univ Sci Technol Beijing, 33, 9, (2011)
  • [5] Jain N., Ottino J.M., Lueptow R.M., Regimes of segregation and mixing in combined size and density granular systems: an experimental study, Granular Matter, 7, 2-3, (2005)
  • [6] Jain N., Ottino J.M., Lueptow R.M., Combined size and density segregation and mixing in noncircular tumblers, Phys Rev E, 71, (2005)
  • [7] Khakhar D.V., Mccarthy J.J., Ottino J.M., Radial segregation of granular mixtures in rotating cylinders, Phys Fluids, 9, 12, (1997)
  • [8] Khakhar D.V., Orpe A.V., Hajra S.K., Segregation of granular materials in rotating cylinders, Phys A, 318, 1-2, (2003)
  • [9] Hill K.M., Gioia G., Amaravadi D., Et al., Moon patterns, sun patterns, and wave breaking in rotating granular mixtures, Complexity, 10, 4, (2005)
  • [10] Consway S.L., Shinbrot T., Glassser B.J., A taylor vortex analogy in granular flows, Nature, 431, 7007, (2004)