International Journal of Fracture

, Volume 153, Issue 1, pp 85–92 | Cite as

Fracture Toughness Test with a Sharp Notch Introduced by Focussed Ion Beam

  • Theo Fett
  • Dominic Creek
  • Susanne Wagner
  • Gabriele Rizzi
  • Cynthia A. Volkert
Letters in Fracture and Micromechanics

Abstract

The validity of fracture toughness data obtained from tests with V-notched bending bars is affected by the notch root radius and the presence of R-curve behavior. A macroscopic test specimen has been developed that contains a notch introduced by focused ion beam machining. This produces a notch root radius of less than 0.1 μm, so that notch effects can be ignored for most ceramics. Also, due to the very small notch depths the influence of a rising R-curve should be very close to that of natural cracks. First tests, carried out on a Ce-doped zirconia ceramic resulted in a toughness of K Ic ≈ 5.9 MPa√m.

Keywords

Focussed ion beam fracture toughness R-curve 

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References

  1. Benthem J.P. (1977) State of stress at the vertex of a quarter-infinite crack in a half-space. International Journal of Solids and Structures 13: 479–492MATHCrossRefGoogle Scholar
  2. Damani R.J., Gstrein R., Danzer R. (1996) Critical notch-root radius effect in SENB-S fracture toughness testing. Journal of the European Ceramic Society 16: 695–702CrossRefGoogle Scholar
  3. Fett T., Munz D. (1997) Stress Intensity Factors and Weight Functions. Computational Mechanics Publications, SouthamptonGoogle Scholar
  4. Kübler J. (1997) Fracture toughness using the SEVNB method: Preliminary results. Ceramic Engineering & Science Proceedings 18: 155–162CrossRefGoogle Scholar
  5. Marshall D.B., Swain M.V. (1988) Crack resistance curves in magnesia-partially-stabilized zirconia. Journal of the American Ceramic Society 71: 399–407CrossRefGoogle Scholar
  6. Munz, D., Fett, T. (1999). CERAMICS, Failure, Material Selection, Design, Springer-Verlag,Google Scholar
  7. Munz D. (2007) What can we learn from R-curve measurements?. Journal of the American Ceramic Society 90: 1–15CrossRefGoogle Scholar
  8. Nishida T., Pezzotti G., Mangialardi T., Paolini A.E. (1996) Fracture mechanics evaluation of ceramics by stable crack propagation in bend bar specimens. Fracture Mechanics of Ceramics 11: 107–114Google Scholar
  9. Rauchs G., Fett T., Munz D. (2002) R-curve behaviour of 9Ce-TZP zirconia ceramics. Engineering Fracture Mechanics 69: 389–401CrossRefGoogle Scholar
  10. Steinbrech R., Schmenkel O. (1988) Crack resistance curves for surface cracks in alumina. Comm. Journal of the American Ceramic Society 71: C271–C273Google Scholar

Copyright information

© Springer Science+Business Media B.V. 2008

Authors and Affiliations

  • Theo Fett
    • 1
  • Dominic Creek
    • 1
  • Susanne Wagner
    • 1
  • Gabriele Rizzi
    • 2
  • Cynthia A. Volkert
    • 3
  1. 1.Universität Karlsruhe, Institut für Keramik im MaschinenbauKarlsruheGermany
  2. 2.Forschungszentrum KarlsruheInstitut für Materialforschung IIKarlsruheGermany
  3. 3.Universität Göttingen, Institut für MaterialphysikGöttingenGermany

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