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Carolin Körner

Researcher at University of Erlangen-Nuremberg

Publications -  248
Citations -  10639

Carolin Körner is an academic researcher from University of Erlangen-Nuremberg. The author has contributed to research in topics: Microstructure & Superalloy. The author has an hindex of 48, co-authored 207 publications receiving 7915 citations. Previous affiliations of Carolin Körner include Joint Institute for Nuclear Research.

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Processing of in situ Al3Ti/Al composites by advanced high shear technology: influence of mixing speed

TL;DR: In this article, the effect of mixing speed on the microstructure and mechanical properties of Al3Ti/Al composites was investigated, and the results showed that the reaction rate and Al-3Ti particle size increase with the increase of the mixing speed.
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The effect of a negative Poisson’s ratio on thermal stresses in cellular metallic structures

TL;DR: In this paper, finite element analysis simulations of the displacement and stress fields in locally heated three dimensional auxetic and cubic structures are compared, and it is found that the auxetic behavior can effectively reduce thermal stresses by internal node rotation and strut bending, especially for constrained (clamped) boundary conditions.
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Mesh resolution consideration for the viability prediction of lost salt cores in the high pressure die casting process

TL;DR: In this article, the possibilities of numerical simulation are investigated to predict core failure during the casting process, and numerical results are created with different mesh resolutions and compared to evaluate the simulation results with according mechanical characterisation, in this way an objective approach to find process parameters based on the mechanical properties of the salt cores without costly and time consuming trial and error testing could be established.
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Numerical Alloy Development for Additive Manufacturing towards Reduced Cracking Susceptibility

TL;DR: In this article, the authors investigated the feasibility of established hot cracking models for numerically based development of crack-resistant nickel-base superalloys with a high γ′ volume fraction for additive manufacturing.