• Title of article

    Effect of cooling rate on the high strain rate properties of boron steel

  • Author/Authors

    Alexander Bardelcik، نويسنده , , Christopher P. Salisbury، نويسنده , , Sooky Winkler، نويسنده , , Mary A. Wells، نويسنده , , Michael J. Worswick، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2010
  • Pages
    9
  • From page
    694
  • To page
    702
  • Abstract
    In this work, the effect of cooling rate on the high strain rate behavior of hardened boron steel was investigated. A furnace was used to austenize boron sheet metal blanks which were then quenched in various media. The four measured cooling rates during the solid state transformation were: 25 (compressed air quench), 45 (compressed air quench), 250 (oil quench) and 2200 °C/s (water quench). Micro-hardness measurements and optical microscopy verified the expected as-quenched microstructure for the various cooling rates. Miniature dog-bone specimens were machined from the quenched blanks and tested in tension at a quasi-static rate, 0.003 s−1 (Instron) and a high rate, 960 s−1 (split Hopkinson tensile bar). The resulting stress vs. strain curves showed that the UTS increased from 1270 MPa to 1430 MPa as strain rate increased for the specimens cooled at 25 °C/s, while the UTS increased from 1615 MPa to 1635 MPa for the specimens cooled at 2200 °C/s. The high rate tests showed increased ductility for the 25, 45 and 250 °C/s specimens, while the specimens cooled at 2200 °C/s showed a slight decrease. The Hollomon hardening curve was fit to the true stress vs. true strain curves and showed that the mechanical response of the high rate tests exhibited a greater rate of hardening prior to fracture than the quasi-static tests. The hardening rate also increased for the specimens quenched at higher cooling rates. Optical micrographs of the fractured specimens showed that the failure mechanism transformed from a ductile-shear mode at the lower cooling rates to a shear mode at the high cooling rates.
  • Keywords
    Hot forming die quenching , ultra high strength steel , high strain rate , split Hopkinson tensile bar , martensite
  • Journal title
    International Journal of Impact Engineering
  • Serial Year
    2010
  • Journal title
    International Journal of Impact Engineering
  • Record number

    1251947