Raabe, D.: News from the Iron Age – 3D EBSD and fresh Lobster. Anorganisch-Chemisches Kolloquium der Fakultät für Chemie, TU Dresden und Max-Planck-Instituts für Chemische Physik fester Stoffe, Dresden, Germany (2005)
Raabe, D.; Al-Sawalmih, A.; Brokmeier, H. G.; Yi, S. B.: Texture and Smart Anisotropy of the Exoskeleton Tissue of Lobster. MRS Spring Meeting 2005, San Francisco, CA, USA (2005)
Konrad, J.; Raabe, D.; Zaefferer, S.: Investigation of orientation gradients around particles and their influence on particle stimulated nucleation in a hot rolled Fe3Al based alloy by applying 3D EBSD. DPG Frühjahrstagung, Berlin, Germany (2005)
Bastos, A.; Zaefferer, S.; Raabe, D.: Characterization of nanostructured electrodeposited NiCo Samples by use of Electron Backscatter Diffraction (EBSD). MRS Spring Meeting, San Francisco, CA, USA (2005)
Raabe, D.: Kristallmechanik in Metallen und Polymeren. Vom Werkstoffverständnis zum Wettbewerbsvorteil, Fraunhofer Institut für Werkstoffmechanik, Freiburg (2005)
Raabe, D.: Simulationen und Experimente zur Kristallmechanik. Instituts-Kolloquium am Institut für Festkörper- und Werkstoffforschung (IFW), Dresden, Germany (2005)
Roters, F.; Jeon-Haurand, H. S.; Raabe, D.: A texture evolution study using the Texture Component Crystal Plasticity FEM. Plasticity 2005, Kauai, USA (2005)
Raabe, D.: The role of texture and anisotropy in nano- and microscale materials mechanics. Keynote lecture at the Plasticity Conference 2004/2005, Hawai, USA (2005)
Raabe, D.: Using the Lattice Boltzmann Method for Multiscale Modeling in Materials Science and Engineering. Lecture at the Plasticity Conference 2004/2005, Hawai, USA (2005)
Raabe, D.; Romano, P.; Al-Sawalmih, A.; Sachs, C.; Servos, G.; Hartwig, H. G.: Microstructure and Mesostructure of the exoskeleton of the lobster homarus americanus. MRS Spring Meeting, San Francisco, CA, USA (2005)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
The aim of the Additive micromanufacturing (AMMicro) project is to fabricate advanced multimaterial/multiphase MEMS devices with superior impact-resistance and self-damage sensing mechanisms.
The Ni- and Co-based γ/γ’ superalloys are famous for their excellent high-temperature mechanical properties that result from their fine-scaled coherent microstructure of L12-ordered precipitates (γ’ phase) in an fcc solid solution matrix (γ phase). The only binary Co-based system showing this special type of microstructure is the Co-Ti system…
We will investigate the electrothermomechanical response of individual metallic nanowires as a function of microstructural interfaces from the growth processes. This will be accomplished using in situ SEM 4-point probe-based electrical resistivity measurements and 2-point probe-based impedance measurements, as a function of mechanical strain and…
Laser Powder Bed Fusion (LPBF) is the most commonly used Additive Manufacturing processes. One of its biggest advantages it offers is to exploit its inherent specific process characteristics, namely the decoupling the solidification rate from the parts´volume, for novel materials with superior physical and mechanical properties. One prominet…