Hydrogen and temper embrittlement in 9Cr–1Mo steel
- 1 September 1988
- journal article
- research article
- Published by SAGE Publications in Materials Science and Technology
- Vol. 4 (9) , 791-802
- https://doi.org/10.1179/026708388790221953
Abstract
The synergism between hydrogen embrittlement and temper embrittlement has been investigated in a 9Cr–1Mo martensitic steel. Measurements of tensile ductility were used to monitor the development of embrittlement with increasing hydrogen content in material as tempered and aged for up to 5000 h at 500 or 550°C. A detailed examination was made of associated changes in fracture mechanism, precipitate microstructure, and interfacial and precipitate chemistry. A strong interaction between hydrogen and temper embrittlement was observed. Both types of embrittlement in isolation reduced tensile ductility by promoting a ductile interlath fracture mechanism: ‘chisel fracture’. Hydrogen and temper embrittlement acted synergistically to reduce ductility further by the promotion of brittle intergranular fracture and transgranular cleavage. The dominant factor controlling the interaction was the precipitation of a brittle intermetallic Laves phase containing phosphorus in solution. Phosphorus segregated to interfaces was considered to make an important, but secondary, contribution to the embrittlement observed. MST/791Keywords
This publication has 4 references indexed in Scilit:
- Effect of ageing on properties of pressure vessel steelsActa Metallurgica, 1986
- Direct observations of hydrogen enhanced crack propagation in ironScripta Metallurgica, 1984
- Embrittlement of a 5 Pct Nickel high strength steel by impurities and their effects on hydrogen-induced crackingMetallurgical Transactions A, 1978
- The cooperative relation between temper embrittlement and hydrogen embrittlement in a high strength steelMetallurgical Transactions, 1974