Zhu, L.-F.; Grabowski, B.; Neugebauer, J.: Efficient approach to compute melting properties fully from ab initio with application to Cu. MPIE-ICAMS workshop, Ebernburg, Germany (2017)
Grabowski, B.: Data driven engineering of advanced materials: Combining high precision and scale bridging. Colloquium at Forschungszentrum Jülich, Jülich, Germany (2017)
Grabowski, B.: Development and application of quantum mechanics based simulation tools for the design of modern metallic materials. Seminar at RWTH Aachen, Aachen, Germany (2017)
Grabowski, B.: Discovery of an ordered hexagonal superstructure in an Al–Hf–Sc–Ti–Zr high entropy alloy. Seminar at University of Münster, Münster, Germany (2016)
Grabowski, B.: Discovery of an orderered hexagonal superstructure in an Al–Hf–Sc–Ti–Zr high entropy alloy. Seminar, Universität Münster, Münster, Germany (2016)
Zhu, L.-F.; Grabowski, B.; Neugebauer, J.: Development of methodologies to efficiently compute melting properties fully from ab initio. 2nd German-Dutch Workshop on Computational Materials Science, Domburg, The Netherlands (2016)
Grabowski, B.: Entwicklung von quantenmechanischen Simulationsmethoden für das Design moderner metallischer Werkstoffe. Seminar at University Paderborn, Paderborn, Germany (2016)
Grabowski, B.: Entwicklung von quantenmechanischen Simulationsmethoden für das Design moderner metallischer Werkstoffe. Seminar at Universität Paderborn, Paderborn, Germany (2016)
Körmann, F.; Grabowski, B.; Hickel, T.; Neugebauer, J.: Lattice excitations in magnetic alloys: Recent advances in ab initio modeling of coupled spin and atomic fluctuations. TMS Annual Meeting 2016, Nashville, TN, USA (2016)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
This project aims to investigate the dynamic hardness of B2-iron aluminides at high strain rates using an in situ nanomechanical tester capable of indentation up to constant strain rates of up to 100000 s−1 and study the microstructure evolution across strain rate range.
This project deals with the phase quantification by nanoindentation and electron back scattered diffraction (EBSD), as well as a detailed analysis of the micromechanical compression behaviour, to understand deformation processes within an industrial produced complex bainitic microstructure.
Within this project, we will use a green laser beam source based selective melting to fabricate full dense copper architectures. The focus will be on identifying the process parameter-microstructure-mechanical property relationships in 3-dimensional copper lattice architectures, under both quasi-static and dynamic loading conditions.
Oxides find broad applications as catalysts or in electronic components, however are generally brittle materials where dislocations are difficult to activate in the covalent rigid lattice. Here, the link between plasticity and fracture is critical for wide-scale application of functional oxide materials.