• Title of article

    Influence of charge size distribution on net-power draw of tumbling mill based on DEM modelling

  • Author/Authors

    Djordjevic، نويسنده , , Nenad، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2005
  • Pages
    4
  • From page
    375
  • To page
    378
  • Abstract
    Modelling and optimization of the power draw of large SAG/AG mills is important due to the large power draw which modern mills require (5–10 MW). The cost of grinding is the single biggest cost within the entire process of mineral extraction. Traditionally, modelling of the mill power draw has been done using empirical models. Although these models are reliable, they cannot model mills and operating conditions which are not within the model database boundaries. Also, due to its static nature, the impact of the changing conditions within the mill on the power draw cannot be determined using such models. e advances in computing power, discrete element method (DEM) modelling of large mills with many thousands of particles could be a time consuming task. The speed of computation is determined principally by two parameters: number of particles involved and material properties. The computational time step is determined by the size of the smallest particle present in the model and material properties (stiffness). case of small particles, the computational time step will be short, whilst in the case of large particles; the computation time step will be larger. Hence, from the point of view of time required for modelling (which usually corresponds to time required for 3–4 mill revolutions), it will be advantageous that the smallest particles in the model are not unnecessarily too small. The objective of this work is to compare the net power draw of the mill whose charge is characterised by different size distributions, while preserving the constant mass of the charge and mill speed.
  • Keywords
    sag milling , Discreet element modelling
  • Journal title
    Minerals Engineering
  • Serial Year
    2005
  • Journal title
    Minerals Engineering
  • Record number

    2274319