Huemer, K.; Karsten, S.; Balusundaram, K.; Raabe, D.; Hild, S.; Fabritius, H.: Structural organization and mineral distribution in load-bearing exoskeleton parts of the edible crab Cancer pagurus. DPG Frühjahrstagung 2010, Regensburg, Germany (2010)
Fabritius, H.; Karsten, E. S.; Balasundaram, K.; Hild, S.; Huemer, K.; Raabe, D.: Influence of Structural Organization and Mineral Distribution on the Local Mechanical Properties of Mineralized Cuticle from the Crab Cancer pagurus. Materials Science and Engineering MSE 2010, Darmstadt, Germany (2010)
Fabritius, H.; Hild, S.; Raabe, D.: Leg joints of the lobster Homarus americanus as an example of cuticle modification for specific functions: Variations in structure, composition and properties. MRS Fall Meeting 2008, Boston, MA, USA (2008)
Struss, J.; Znidarsic, N.; Ziegler, A.; Hild, S.: Microscopic anatomy and mineral composition of cuticle in amphibious isopods Ligia italica and Titanethes albus (Crustacea:Isopoda). European Microscopy Congeress EMC 2008, Aachen, Germany (2008)
Ziegler, A.; Hild, S.: Distribution and function of amorphous CaCO3 and Calcite within the tergite cuticle of terrestrial isopods (Crustacea). European Microscopy Congeress EMC 2008, Aachen, Germany (2008)
Hild, S.; Ziegler, A.: The isopod cuticle: A model to study formation and function of amorphous calcium carbonate in calcified tissues. European Geosciences Union General Assembly, Vienna, Austria (2008)
International researcher team presents a novel microstructure design strategy for lean medium-manganese steels with optimized properties in the journal Science
About 90% of all mechanical service failures are caused by fatigue. Avoiding fatigue failure requires addressing the wide knowledge gap regarding the micromechanical processes governing damage under cyclic loading, which may be fundamentally different from that under static loading. This is particularly true for deformation-induced martensitic…
With the support of DFG, in this project the interaction of H with mechanical, chemical and electrochemical properties in ferritic Fe-based alloys is investigated by the means of in-situ nanoindentation, which can characterize the mechanical behavior of independent features within a material upon the simultaneous charge of H.
The full potential of energy materials can only be exploited if the interplay between mechanics and chemistry at the interfaces is well known. This leads to more sustainable and efficient energy solutions.
This project aims to correlate the localised electrical properties of ceramic materials and the defects present within their microstructure. A systematic approach has been developed to create crack-free deformation in oxides through nanoindentation, while the localised defects are probed in-situ SEM to study the electronic properties. A coupling…