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Title: Strengthening effects and thermal stability of the ultrafine grained microstructure of a nickel base superalloy at room and elevated temperatures

Journal Article · · Materials Characterization
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  1. School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240 (China)
  2. Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800 (China)

Highlights: • UFG Alloy 718-5 vol.%Y{sub 2}O{sub 3} alloy is fabricated from alloy machining chips. • The kind of oxide nanoparticles is identified in Nb-rich superalloys. • High thermal stable nanoparticles and UFG microstructure is achieved. • The GB strengthening effects at 25 °C and 650 °C of UFG alloy are calculated. - Abstract: An ultrafine grained (UFG) nickel base superalloy doped with 5 vol.%Y{sub 2}O{sub 3} nanoparticles, Alloy 718-5 vol.%Y{sub 2}O{sub 3}, was fabricated by a powder metallurgy route which combines high energy mechanical milling of Alloy 718 machining chips, spark plasma sintering, hot extrusion and heat treatment, and its microstructure and mechanical properties at room temperature and 650 °C were studied. The study showed that the Y{sub 2}O{sub 3} nanoparticles reacted with Al from the base alloy and transformed to Y{sub 4}Al{sub 2}O{sub 9} nanoparticles (average diameter: 12.5 nm) which were stable during heat treatment at 970 °C (0.78T{sub m}, where T{sub m} is the solidus temperature of the alloy in K). As a result of the high thermal stability of Y{sub 4}Al{sub 2}O{sub 9} nanoparticles and their effective pinning of the grain boundaries, the UFG microstructure (average grain size: 179 nm) of the alloy was stable during heat treatment. Grain boundary and nanoparticle strengthening rendered the heat treated Alloy 718-5 vol.%Y{sub 2}O{sub 3} alloy with a notable room temperature tensile yield strength of 1870 MPa. It was demonstrated that the grain boundary strengthening effect associated with the UFG microstructure was still significant at 650 °C, but clearly decreased from its level at room temperature. The grain boundary strengthening and nanoparticle strengthening effects which are likely to be independent of test temperature sustain a reasonably high tensile yield strength of 800 MPa at 650 °C, despite the absence of γ′ and γ″ precipitates in the UFG microstructure.

OSTI ID:
22805861
Journal Information:
Materials Characterization, Vol. 145; Other Information: Copyright (c) 2017 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.; Country of input: International Atomic Energy Agency (IAEA); ISSN 1044-5803
Country of Publication:
United States
Language:
English