Bernst, R.; Spiegel, M.: Carburisation of Fe-Al alloys at 600°C in flowing CO-H2-H2O gas mixture. In: EUROCORR 2006. EUROCORR 2006, Maastricht, The Netherlands, September 24, 2006 - September 28, 2006. (2006)
Bernst, R.; Spiegel, M.; Schneider, A.: Metal dusting of iron aluminium alloys. Discussion Meeting on the Development of Innovative Iron Aluminium Alloys, MPIE Düsseldorf, Germany (2004)
Schneider, A.; Zhang, J.; Bernst, R.; Inden, G.: Thermodynamics and kinetics of phase transformations during metal dusting of iron and iron-based alloys. CALPHAD XXXIII, Krakow, Poland (2004)
Bernst, R.; Spiegel, M.: Carburisation of Fe–Al alloys at 1000°C in flowing CO-H2-H2O gas mixture. 3rd Discussion Meeting on the Development of Innovative Iron Aluminium Alloys, Mettmann, Germany (2006)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
Project C3 of the SFB/TR103 investigates high-temperature dislocation-dislocation and dislocation-precipitate interactions in the gamma/gamma-prime microstructure of Ni-base superalloys.
Statistical significance in materials science is a challenge that has been trying to overcome by miniaturization. However, this process is still limited to 4-5 tests per parameter variance, i.e. Size, orientation, grain size, composition, etc. as the process of fabricating pillars and testing has to be done one by one. With this project, we aim to…
In this project, we aim to achieve an atomic scale understanding about the structure and phase transformation process in the dual-phase high-entropy alloys (HEAs) with transformation induced plasticity (TRIP) effect. Aberration-corrected scanning transmission electron microscopy (TEM) techniques are being applied ...
Biological materials in nature have a lot to teach us when in comes to creating tough bio-inspired designs. This project aims to explore the unknown impact mitigation mechanisms of the muskox head (ovibus moschatus) at several length scales and use this gained knowledge to develop a novel mesoscale (10 µm to 1000 µm) metamaterial that can mimic the…