Kumar, P.; Kassner, M.E.; Blum, W.; Eisenlohr, P.: New Observations on High Temperature Creep at Very Low Stresses. Creep 2008, Bad Berneck, Germany (2008)
Sadrabadi, P.; Eisenlohr, P.; Wehrhan, G.; Stäblein, J.; Parthier, L.; Blum, W.: Evolution of dislocation structure and deformation resistance in creep exemplified on single crystals of CaF₂. Creep 2008, Bad Berneck, Germany (2008)
Eisenlohr, P.: How to Bridge from Microstructure to Continuum in Crystal Plasticity FEM. MPIE inter-departmental tutorial day(s) 2008, MPI für Eisenforschung GmbH, Düsseldorf, Germany (2008)
Bieler, T. R.; Eisenlohr, P.; Kumar, D.; Crimp, M. A.; Roters, F.; Raabe, D.: Localized Twin Shear at Grain Boundaries Leading to Fracture Nucleation. TMS annual meeting, New Orleans, LA, USA (2008)
Bieler, T. R.; Eisenlohr, P.; Kumar, D.; Crimp, M. A.; Roters, F.; Raabe, D.: Predicting Microcrack Nucleation Due to Slip-Twin Interactions at Grain Boundaries in Duplex Near Gamma-TiAl. TMS annual meeting, New Orleans, LA, USA (2008)
Eisenlohr, P.; Hantcherli, L.; Bastos, A.; Raabe, D.: Mechanismen bei der Verformung hochfester Stähle: Charakterisierung, Simulation, Eigenschaften. 29. Symposium des Arbeitskreises "Mathematik in Forschung und Praxis" über "Neue Modelle zur Simulation höchstfester Stähle", Bad Honnef, Germany (2007)
Eisenlohr, P.: Coarse-graining schemes for forming simulations of dualphase steels. International Max-Planck Workshop "Multiscale Materials Modeling of Condensed Matter", Sant Feliu de Guixols, Spain (2007)
Hantcherli, L.; Eisenlohr, P.; Roters, F.; Raabe, D.: Application of a Phenomenological Approach to Mechanical Twinning in Crystal Plasticity Finite Element Modelling of High-Mn Steel. EUROMAT 2007, Nürnberg, Germany (2007)
Blum, W.; Eisenlohr, P.; Amberger, D.; Milička, K.; Göken, M.: Microstructure - Plasticity relationship of Mg-alloys at elevated temperatures. 100th Eastern Forum of Science and Technology "Adv. Magnesium Alloys and Their Applications", Shanghai, China (2007)
Eisenlohr, P.; Roters, F.: Efficient and highly accurate reconstruction of ODFs with discrete orientations using integral approximation. GLADD Meeting, Katholieke Universiteit Leuven, Belgium (2007)
Blum, W.; Eisenlohr, P.; Zeng, X. H.; Milička, K.: Creep of Mg-alloys. Int. Symp. on Magnesium Technology in the Global Age, CIM and TMS, Montréal, Canada (2006)
Zeng, X. H.; Eisenlohr, P.; Blum, W.: Modeling the influence of grain boundaries on deformation resistance by statistical dislocation theory. MMM Third International Conference Multiscale Materials Modeling, Freiburg (2006)
Eisenlohr, P.: Modeling deformation kinetics. Symposium on the occasion of Prof. W. Blum's 65th birthday, Universität Erlangen-Nürnberg, Erlangen, Germany (2005)
Max Planck scientists design a process that merges metal extraction, alloying and processing into one single, eco-friendly step. Their results are now published in the journal Nature.
Scientists of the Max-Planck-Institut für Eisenforschung pioneer new machine learning model for corrosion-resistant alloy design. Their results are now published in the journal Science Advances
It is very challenging to simulate electron-transfer reactions under potential control within high-level electronic structure theory, e. g. to study electrochemical and electrocatalytic reaction mechanisms. We develop a novel method to sample the canonical NVTΦ or NpTΦ ensemble at constant electrode potential in ab initio molecular dynamics…
Photovoltaic materials have seen rapid development in the past decades, propelling the global transition towards a sustainable and CO2-free economy. Storing the day-time energy for night-time usage has become a major challenge to integrate sizeable solar farms into the electrical grid. Developing technologies to convert solar energy directly into…
Statistical significance in materials science is a challenge that has been trying to overcome by miniaturization. However, this process is still limited to 4-5 tests per parameter variance, i.e. Size, orientation, grain size, composition, etc. as the process of fabricating pillars and testing has to be done one by one. With this project, we aim to…
Crystal Plasticity (CP) modeling [1] is a powerful and well established computational materials science tool to investigate mechanical structure–property relations in crystalline materials. It has been successfully applied to study diverse micromechanical phenomena ranging from strain hardening in single crystals to texture evolution in…
The field of micromechanics has seen a large progress in the past two decades, enabled by the development of instrumented nanoindentation. Consequently, diverse methodologies have been tested to extract fundamental properties of materials related to their plastic and elastic behaviour and fracture toughness. Established experimental protocols are…