• DocumentCode
    1350009
  • Title

    Stiction model for a head-disc interface: experimental

  • Author

    Gui, Jing ; Kuo, David ; Marchon, Bruno ; Rauch, Gary C.

  • Author_Institution
    Recording Media Group, Seagate Technol., Fremont, CA, USA
  • Volume
    33
  • Issue
    1
  • fYear
    1997
  • fDate
    1/1/1997 12:00:00 AM
  • Firstpage
    932
  • Lastpage
    937
  • Abstract
    Experiments have been conducted to assess the theoretical predictions of a stiction model for a head-disc interface recently proposed. One of the key predictions of this model is that the relationship between stiction and the real area of contact is non-monotonic, and that minimum stiction should occur at an optimal value of the real area of contact. The regular textures of different asperity densities, generated by the laser texturing technique, were used in this study. The single-crater type of laser bumps could be accurately simulated by either spherical bumps with an effective radius of curvature, or cylindrical bumps with an effective Young´s modulus. The stiction measurement results were found to be in excellent agreement with the theoretical prediction. The comparison between the model predictions and the experimental results were made for the stiction vs. asperity height relationships for different size laser bumps, at different spacings, and at different lubrication levels. In all cases, good agreements between the model and the experimental data have been confirmed. In this study, it has also been found that a “bonded” Zdol lubricant film still behaves like a liquid in terms of its ability to form menisci around contacting points
  • Keywords
    Young´s modulus; hard discs; lubrication; magnetic heads; magnetic recording; modelling; surface texture; surface topography; asperity densities; bonded Zdol lubricant film; contact area; cylindrical bumps; head-disc interface; laser bumps; laser texturing technique; lubrication levels; spherical bumps; stiction measurement; stiction model; Area measurement; Atomic force microscopy; Design optimization; Laser modes; Laser theory; Lubricants; Lubrication; Optical films; Optical microscopy; Predictive models;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/20.560134
  • Filename
    560134