• Title of article

    Experimental and numerical analysis of a lab-scale fluid energy mill

  • Author/Authors

    Teng، نويسنده , , Shuli and Wang، نويسنده , , Peng and Zhu، نويسنده , , Linjie and Young، نويسنده , , Ming-Wan and Gogos، نويسنده , , Costas G.، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2009
  • Pages
    9
  • From page
    31
  • To page
    39
  • Abstract
    This study investigates the grinding performance of Fluid Energy Mill (FEM) through experimental studying and numerical simulation. The experimental parametric study shows that the mean product particle size decreases with grinding pressure (GP) and increases with the solid feed rate (SFR). In comparison, the influence of the feed pressure (FP) on the product size is much less significant. Visualization study indicates the existence of a particle-concentrated layer near the peripheral wall region, named the grinding region in this article since most of the collision-induced size reduction occurred in this region. The grinding air streams re-orient the particles, facilitating particle–particle and particle–wall collisions downstream in the grinding region. To understand the influence of the particle–wall collision, the peripheral wall of FEM was coated with a foam film in some experiments. The particle–wall collision was found to play a significant role in size reduction, especially under low air pressure. s flow inside the grinding chamber was simulated as the initial step to the ongoing 2-phase flow simulation of the milling process in the FEM. The simulation results show that eddies are formed at the feed air entrance, which explains the tendency of fine particle deposition in this region. The simulation results also suggest a strong relationship between the GP and the mean gas velocity in the grinding region.
  • Keywords
    Fluid energy mill , Single-phase flow field simulation , Particle–wall collision , Milling
  • Journal title
    Powder Technology
  • Serial Year
    2009
  • Journal title
    Powder Technology
  • Record number

    1698990