• Title of article

    Slot-die processing of lithium-ion battery electrodes—Coating window characterization

  • Author/Authors

    Schmitt، نويسنده , , Marcel and Baunach، نويسنده , , Michael and Wengeler، نويسنده , , Lukas and Peters، نويسنده , , Katharina and Junges، نويسنده , , Pascal and Scharfer، نويسنده , , Philip and Schabel، نويسنده , , Wilhelm، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2013
  • Pages
    6
  • From page
    32
  • To page
    37
  • Abstract
    Slot-die coating is actually the most used coating method for the manufacturing of lithium-ion battery electrodes. An easy way of reducing production costs is to increase the line capacity. Thus, the relatively high-viscous slurries are coated at continuously increasing velocities. Facing these higher and higher velocities, the main processing challenge is to ensure that the surface quality stays constant. Therefore we investigated coating of high-viscous anode slurries consisting of large graphite particles. Systematically detected conditions for which coating defects occurred were discussed and compared with different theoretical limits for stable coating conditions. Thereby the uniformity of the stable wet film was analyzed and logged with a two dimensional laser sensor system. hough the detected break-up lines are, in some regions, congruent with the applied viscocapillary models, the appearing coating defects are not as expected in the literature. Furthermore, large particles and agglomerations may provoke an additional film break-up at small film thicknesses regardless of the coating speed. For stable conditions the roughness of the film increases when the dimensionless gap width increases.
  • Keywords
    Film uniformity , lithium-ion batteries , Slot-die coating , Viscocapillary model , Low-flow limit
  • Journal title
    Chemical Engineering and Processing: Process Intensification
  • Serial Year
    2013
  • Journal title
    Chemical Engineering and Processing: Process Intensification
  • Record number

    1611162