Bastos, A.; Zaefferer, S.; Raabe, D.: 3D Orientation microscopy. Deutsche Gesellschaft für Materialkunde e.V. Fachausschuss Texturen, RWTH Aachen, Germany (2007)
Zaefferer, S.: 3D orientation microscopy in a FIB-SEM: A new dimension of microstructure characterisation. Res Metallica Chair 2007, KU Leuven, Belgium (2007)
Zaefferer, S.: 3D orientation microscopy in a FIB-SEM: A new dimension of microstructure characterisation. Presentation at the scientific advisory board MPI Eisenforschung, MPI Eisenforschung GmbH, Düsseldorf, Germany (2007)
Bastos, A.; Zaefferer, S.; Raabe, D.: 3D EBSD Characterization of a Nanocrystalline NiCo Alloy by use of a High-resolution Field Emission SEM-EBSD Coupled with Serial Sectioning in a Focused Ion Beam Microscope (FIB). MRS Fall Conference, Boston, MA, USA (2006)
Kobayashi, S.; Zaefferer, S.: Determination of Phase Equilibria in the Fe3Al–Cr–Mo–C Semi-quaternary System Using a New Diffusion-multiple Technique. 12th International IUPAC Conference on High Temperature Materials Chemistry, Vienna, Austria (2006)
Zaefferer, S.; Sato, H.: Investigation of the formation mechanism of martensite plates in Fe-30%Ni by a high resolution orientation microscopy in SEM. ESOMAT 2006, Bochum (2006)
Kobayashi, S.; Zaefferer, S.; Raabe, D.: Relative Importance of Nucleation vs. Growth for Recrystallisation of Particle-containing Fe3Al Alloys. Fundamentals of Deformation and Annealing Symposium, Manchester, UK (2006)
Zaefferer, S.: High resolution orientation microscopy in 2 and 3 dimensions to study microstructure formation processes. 2. Warmumformtag (2.WUT), Düsseldorf (2006)
Zaafarani, N.; Raabe, D.; Singh, R. N.; Roters, F.; Zaefferer, S.; Zambaldi, C.: 3D EBSD characterization and crystal plasticity FE simulation of the texture and microstructure below a nanoindent in Cu. Plasticity Conference 2006, Halifax, Canada (2006)
Kobayashi, S.; Zaefferer, S.: Microstructure Control Using Phase Transformations in Ternary Gamma TiAl Alloys. Seminar talk, Universität Kassel, Kassel Germany (2006)
Zaefferer, S.: 3D-orientation microscopy in a FIB-SEM: A new dimension of microstructure characterization. 13th Conference on Electron Backscatter Diffraction, Oxford, UK (2006)
Bastos, A.; Zaefferer, S.; Raabe, D.: Orientation microscopy on electrodeposited samples. 13th Conference and Workshop on Electron Backscatter Diffraction, Oxford, UK (2006)
Bastos, A.; Zaefferer, S.; Raabe, D.: Characterization of microstructure and Texture of nanostructure electrodeposited NiCo samples by use of Electron Backscatter Diffraction (EBSD). DPG – Spring meeting, Dresden, Germany (2006)
Kobayashi, S.; Zaefferer, S.: Optimisation of Precipitation for the Development of Heat Resistant Fe3Al-based Alloys. Seminar talk, National Institute for Materials Science (NIMS), Tsukuba, Japan (2006)
Scientists of the Max-Planck-Institut für Eisenforschung pioneer new machine learning model for corrosion-resistant alloy design. Their results are now published in the journal Science Advances
Recent developments in experimental techniques and computer simulations provided the basis to achieve many of the breakthroughs in understanding materials down to the atomic scale. While extremely powerful, these techniques produce more and more complex data, forcing all departments to develop advanced data management and analysis tools as well as…
Integrated Computational Materials Engineering (ICME) is one of the emerging hot topics in Computational Materials Simulation during the last years. It aims at the integration of simulation tools at different length scales and along the processing chain to predict and optimize final component properties.
Data-rich experiments such as scanning transmission electron microscopy (STEM) provide large amounts of multi-dimensional raw data that encodes, via correlations or hierarchical patterns, much of the underlying materials physics. With modern instrumentation, data generation tends to be faster than human analysis, and the full information content is…
The project’s goal is to synergize experimental phase transformations dynamics, observed via scanning transmission electron microscopy, with phase-field models that will enable us to learn the continuum description of complex material systems directly from experiment.