The statistical scatter of fracture toughness in the ductile-brittle transition temperature range was experimentally examined on a 500 MPa class low carbon steel. Fracture toughness tests were replicatedly performed at À60 °C, À20 °C and À10 °C. The tests at À60 °C resulted in a single modal Weibull
Fracture toughness behavior in the ductile–brittle transition region of the tempered martensitic Eurofer97 steel: Experiments and modeling
✍ Scribed by R. Bonadé; P. Mueller; P. Spätig
- Publisher
- Elsevier Science
- Year
- 2008
- Tongue
- English
- Weight
- 275 KB
- Volume
- 75
- Category
- Article
- ISSN
- 0013-7944
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✦ Synopsis
The fracture toughness of the tempered martensitic stainless steel Eurofer97 has been experimentally characterized in the ductile-to-brittle transition (DBT) region with sub-sized compact tension specimens. The median fracture toughnesstemperature curve in the lower transition region has been found to deviate somewhat from the master curve as described in the ASTM E1921-03 standard. Two-dimensional finite element simulations of the compact tension specimen have been performed. The analysis of the stress fields around the crack tip have been used to define a local criterion for cleavage based upon the attainment of a critical stress over a critical area. This local criterion has been used to reconstruct the lower bound in the transition region. The calibration procedure of the critical parameters has been discussed in detail as well as the uncertainty in the critical values. It is shown in particular that the critical stress is well defined while the model leads to a rather larger uncertainty in the determination of the critical area.
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