Ostwald, C.; Grabke, H. J.: Initial Oxidation and Chromium Diffusion. I. Effects of Surface Working on 9-20% Cr Steels. Corrosion Science 46 (5), pp. 1113 - 1127 (2004)
Grabke, H. J.; Spiegel, M.; Zahs, A.: Role of Alloying Elements and Carbides in the Chlorine-induced Corrosion of Steels and Alloys. Materials Research 7 (1), pp. 89 - 95 (2004)
Grabke, H.-J.; Tôkei, Z. S.; Ostwald, C.: Initial Oxidation of a 9 % CrMo- and a 12 % CrMoV – Steel. Steel Research International 75 (1), pp. 38 - 46 (2004)
Grabke, H. J.; Müller-Lorenz, E. M.; Zinke, M.: Metal Dusting Behaviour of Welded Ni-Base Alloys with Different Surface Finish. Material and Corrosion 54, pp. 785 - 792 (2003)
Pippel, E.; Woltersdorf, J.; Grabke, H. J.: Microprocesses of Metal Dusting on Iron - Nickel Alloys and their Dependence on Composition. Material and Corrosion 54 (10), pp. 747 - 751 (2003)
Spiegel, M.; Zahs, A.; Grabke, H. J.: Fundamental aspects of chlorine induced corrosion in power plants. Materials at High Temperatures 20, 2, pp. 153 - 159 (2003)
Moszynski, D.; Grabke, H. J.; Schneider, A.: Effect of sulphur on the formation of graphite at the surface of carburized iron. Surface and Interface Analysis 34, pp. 380 - 383 (2002)
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 influence of grain boundaries on mechanical behavior at ultra-high strain rates and low temperatures. For this micropillar compressions on copper bi-crystals containing different grain boundaries will be performed.
The objective of the project is to investigate grain boundary precipitation in comparison to bulk precipitation in a model Al-Zn-Mg-Cu alloy during aging.
This project aims to develop a testing methodology for the nano-scale samples inside an SEM using a high-speed nanomechanical low-load sensor (nano-Newton load resolution) and high-speed dark-field differential phase contrast imaging-based scanning transmission electron microscopy (STEM) sensor.
The thorough, mechanism-based, quantitative understanding of dislocation-grain boundary interactions is a central aim of the Nano- and Micromechanics group of the MPIE [1-8]. For this purpose, we isolate a single defined grain boundary in micron-sized sample. Subsequently, we measure and compare the uniaxial compression properties with respect to…