Bajaj, P.; Hariharan, A.; Kini, A.; Kürnsteiner, P.; Raabe, D.; Jägle, E. A.: Steels in additive manufacturing: A review of their microstructure and properties. Materials Science and Engineering A: Structural Materials Properties Microstructure and Processing 772, 138633 (2020)
Massey, C. P.; Hoelzer, D. T.; Edmondson, P. D.; Seibert, R. L.; Kini, A.; Gault, B.; Terrani, K. A.; Zinkle, S. J.: OFrac: An advanced nanostructured ferritic alloy fuel cladding for fast reactors. AISTech 2018 Iron and Steel Technology Conference and Exposition, Pennsylvania Convention Center, Philadelphia, PA, USA, May 07, 2018 - May 10, 2018. AISTech - Iron and Steel Technology Conference Proceedings 2018-May, pp. 1433 - 1435 (2018)
Massey, C. P.; Hoelzer, D. T.; Edmondson, P. D.; Seibert, R. L.; Kini, A.; Gault, B.; Terrani, K. A.; Zinkle, S. J.: Ofrac: An advanced nanostructured ferritic alloy fuel cladding for fast reactors. 2018 Transactions of the American Nuclear Society, ANS 2018 and Embedded Topical Meeting Nuclear Fuels and Structural Materials, Marriott Philadelphia Downtown, Philadelphia, PA; USA, June 17, 2018 - June 21, 2018. Transactions of the American Nuclear Society 118, pp. 1433 - 1435 (2018)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
The key to the design and construction of advanced materials with tailored mechanical properties is nano- and micro-scale plasticity. Significant influence also exists in shaping the mechanical behavior of materials on small length scales.
This project aims to correlate the localised electrical properties of ceramic materials and the defects present within their microstructure. A systematic approach has been developed to create crack-free deformation in oxides through nanoindentation, while the localised defects are probed in-situ SEM to study the electronic properties. A coupling…
This project endeavours to offer comprehensive insights into GB phases and their mechanical responses within both pure Ni and Ni-X (X=Cu, Au, Nb) solid solutions. The outcomes of this research will contribute to the development of mechanism-property diagrams, guiding material design and optimization strategies for various applications.
By using the DAMASK simulation package we developed a new approach to predict the evolution of anisotropic yield functions by coupling large scale forming simulations directly with crystal plasticity-spectral based virtual experiments, realizing a multi-scale model for metal forming.