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Projekt Druckansicht

Mikrostrukturen und elementare Verformungsmechnismen in einphasigen kfz und krz Hochentropielegierungen

Fachliche Zuordnung Mechanische Eigenschaften von metallischen Werkstoffen und ihre mikrostrukturellen Ursachen
Metallurgische, thermische und thermomechanische Behandlung von Werkstoffen
Förderung Förderung von 2015 bis 2020
Projektkennung Deutsche Forschungsgemeinschaft (DFG) - Projektnummer 266373036
 
Erstellungsjahr 2021

Zusammenfassung der Projektergebnisse

During this research project, processing routes were established to produce chemically homogeneous, nearly texture-free and single-phase FCC medium- and high-entropy alloys (MEAs and HEAs) from the Cr-Mn-Fe-Co-Ni system with well-controlled grain sizes. This served as basis for further fundamental investigations with several research partners including the characterization of the physical and mechanical properties, oxidation resistance, and phase stability of these materials. The temperature dependence of magnetism, coefficient of thermal expansion, and elastic moduli of a set of medium entropy subsystems of the CrMnFeCoNi HEA were documented in the present project as they are useful for many fields of materials science and for engineers who need them to design components. Another key outcome of this project was the contribution to a better understanding of the elementary deformation mechanisms responsible for the outstanding mechanical properties of MEAs and HEAs at cryogenic temperatures. We showed that deformation twinning plays a key role in overcoming the strength/ductility trade-off. Deformation twinning was found to take place above a critical stress that is temperature independent but depends of chemical composition. In another study, we investigated whether the sluggish diffusion in HEAs would result in enhanced oxidation resistance. Based on oxidation tests in laboratory air followed by microstructural and chemical analyses, it was shown that sluggish diffusion, if any, does not improve the oxidation resistance of the CrMnFeCoNi HEA. This alloy has a rather low oxidation resistance above 600°C due to the fast growth of non-protective Mn-rich oxides and the formation of pores in the matrix close to the oxide scale. Based on a careful comparison with literature data, we suggested that the underlying rate-controlling mechanism corresponds to the diffusion of Mn through the oxides. Finally, we performed a phase-stability and precipitation-kinetics study using an off-equiatomic HEA. This work allowed to establish a simple pseudo-binary phase diagram and, to our knowledge, to report the first TTT-diagram in the field of HEAs.

Projektbezogene Publikationen (Auswahl)

 
 

Zusatzinformationen

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