Tan, K. S.; Hassel, A. W.; Stratmann, M.: Design and construction of a micro-indenter for tribological investigations. Mat.-Wiss. Werkstofftech. 36, pp. 13 - 17 (2005)
Hassel, W.; Tan, K. S.; Stratmann, M.: Examination of particle-surface contact under tribo-corrosion conditions with a novel low force micro indenter. 55th Meeting of the International Society of Electrochemistry, Thessaloniki, Greece (2004)
Hassel, A. W.; Akiyama, E.; Smith, A.; Tan, K. S.; Stratmann, M.: Dynamic and Quasi Static Particle Impingement in Flow Corrosion. COST F2 2nd Workshop „Local Flow Effects in Hydrodynamic Systems”, Paris, France (2003)
Hassel, A. W.; Akiyama, E.; Smith, A.; Tan, K. S.; Stratmann, M.: Dynamic and Quasi Static Particle Impingement in Flow Corrosion. Seminar an der Graduate School of Engineering der Universität von Hokkaido, Sapporo, Japan (2003)
Smith, A. J.; Tan, K. S.; Stratmann, M.; Hassel, A. W.: Korrelation von “Jet impingement” und Mikroindentation Versuchen. 79. AGEF Seminar - 25 Jahre Elektrochemie in Düsseldorf, Düsseldorf, Germany (2004)
Tan, K. S.; Hassel, A. W.; Stratmann, M.: Micro-indenter for tribo-corrosion investigations. 5th European Symposium on Nanomechanical Testing, Hückelhoven, Germany (2004)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
Titanium and its alloys are widely used in critical applications due to their low density, high specific strength, and excellent corrosion resistance, but their poor plasticity at room temperature limits broader utilization. Introducing hydrogen as a temporary alloying element has been shown to improve plasticity during high-temperature processing…
Defects at interfaces strongly impact the properties and performance of functional materials. In functional nanostructures, they become particularly important due to the large surface to volume ratio.
This ERC-funded project aims at developing an experimentally validated multiscale modelling framework for the prediction of fracture toughness of metals.
In this project, links are being established between local chemical variation and the mechanical response of laser-processed metallic alloys and advanced materials.