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
In this project we work on correlative atomic structural and compositional investigations on Co and CoNi-based superalloys as a part of SFB/Transregio 103 project “Superalloy Single Crystals”. The task is to image the boron segregation at grain boundaries in the Co-9Al-9W-0.005B alloy.
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.