DOE OSTI · 2433832
Hierarchical microstructures: a potential route to enhanced stability in structural materials for advanced nuclear reactors
Abstract
The drive to increase efficiency in nuclear energy systems is leading to the need for materials that operate at higher temperatures and stress levels for extended periods, while maintaining stable microstructures to ensure their performance is not compromised. A novel route to producing materials that can perform well in such environments is the creation of hierarchical microstructures. A hierarchical microstructure is a microstructure in which features are present at multiple length scales simultaneously. In this work, a hierarchical microstructure is fabricated in a nickel-base superalloy, featuring nanometer-size gamma precipitates inside larger gamma-prime particles, which are in turn embedded in the gamma matrix phase. The hierarchical features of the microstructure lead to enhanced stability of the gamma-prime precipitates during annealing; the particle size does not follow the expected t^(1/3) growth law predicted by the classic LSW theory. Phase-field simulations are used to understand the unexpected stability of the gamma-prime precipitates.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Aagesen Jr, Larry Kenneth, Meher, Subhashish, Kadambi, Sourabh Bhagwan. 2022-10-13. Hierarchical microstructures: a potential route to enhanced stability in structural materials for advanced nuclear reactors. https://www.osti.gov/biblio/2433832
Cite the original work for its findings. Save a collection to share your selection of sources.