Klusemann, B.; Fischer, G.; Böhlke, T.; Svendsen, B.: Thermomechanical characterization of Portevin-Le Chatelier bands in AlMg3 (AA5754) and modeling based on a modified Estrin-McCormick approach. International Journal of Plasticity 67, pp. 192 - 216 (2015)
Klusemann, B.; Yalçinkaya, T.; Geers, M. G. D.; Svendsen, B.: Application of non-convex rate dependent gradient plasticity to the modeling and simulation of inelastic microstructure development and inhomogeneous material behavior. Computational Materials Science 80, pp. 51 - 60 (2013)
Klusemann, B.; Svendsen, B.; Vehoff, H.: Modeling and simulation of deformation behavior, orientation gradient development and heterogeneous hardening in thin sheets with coarse texture. International Journal of Plasticity 50, pp. 109 - 126 (2013)
Klusemann, B.; Svendsen, B.; Bargmann, S.: Analysis and comparison of two finite element algorithms for dislocation density based crystal plasticity. GAMM-Mitteilungen 36 (2), pp. 219 - 238 (2013)
Barthel, C.; Klusemann, B.; Denzer, R.; Svendsen, B.: Modeling of a thermomechanical process chain for sheet steels. International Journal of Mechanical Sciences 74, pp. 46 - 54 (2013)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
This project studies the influence of grain boundary chemistry on mechanical behaviour using state-of-the-art micromechanical testing systems. For this purpose, we use Cu-Ag as a model system and compare the mechanical response/deformation behaviour of pure Cu bicrystals to that of Ag segregated Cu bicrystals.
The aim of this project is to develop novel nanostructured Fe-Co-Ti-X (X = Si, Ge, Sn) compositionally complex alloys (CCAs) with adjustable magnetic properties by tailoring microstructure and phase constituents through compositional and process tuning. The key aspect of this work is to build a fundamental understanding of the correlation between…
In this project, we aim to enhance the mechanical properties of an equiatomic CoCrNi medium-entropy alloy (MEA) by interstitial alloying. Carbon and nitrogen with varying contents have been added into the face-centred cubic structured CoCrNi MEA.
Hydrogen is a clean energy source as its combustion yields only water and heat. However, as hydrogen prefers to accumulate in the concentrated stress region of metallic materials, a few ppm Hydrogen can already cause the unexpected sudden brittle failure, the so-called “hydrogen embrittlement”. The difficulties in directly tracking hydrogen limits…