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
Adding 30 to 50 at.% aluminum to iron results in single-phase alloys with an ordered bcc-based crystal structure, so-called B2-ordered FeAl. Within the extended composition range of this intermetallic phase, the mechanical behavior varies in a very particular way.
The mechanical properties of bulk CrFeCoNi compositionally complex alloys (CCA) or high entropy alloys (HEA) are widely studied in literature [1]. Notably, these alloys show mechanical properties similar to the well studied quinary CrMnFeCoNi [2] . Nevertheless, little is known about the deformation mechanisms and the thermal behavior of these…
In this project, the effects of scratch-induced deformation on the hydrogen embrittlement susceptibility in pearlite is investigated by in-situ nanoscratch test during hydrogen charging, and atomic scale characterization. This project aims at revealing the interaction mechanism between hydrogen and scratch-induced deformation in pearlite.
Efficient harvesting of sunlight and (photo-)electrochemical conversion into solar fuels is an emerging energy technology with enormous promise. Such emerging technologies depend critically on materials systems, in which the integration of dissimilar components and the internal interfaces that arise between them determine the functionality.