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21, pp. 240 - 265 (Ed. Watson, A.) (2022)
Al–Fe–Nb (Aluminium-Iron-Niobium). In: Ternary Alloys: Selected Al–Fe–X Ternary Systems for Industrial Applications, Vol. 542.
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21, pp. 1 - 38 (Ed. Watson, A.). Materials Science International Services GmbH, Stuttgart, Germany (2022)
Al–Fe (Aluminium-Iron). In: Ternary Alloys: Selected Al–Fe–X Ternary Systems for Industrial Applications, Vol. 543.
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21, pp. 180 - 187 (Ed. Watson, A.). Materials Science International Services GmbH, Stuttgart, Germany (2022)
Al–Fe–Hf (Aluminium-Iron-Hafnium). In: Ternary Alloys: Selected Al–Fe–X Ternary Systems for Industrial Applications, Vol. 544.
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21, pp. 537 - 540 (Ed. Watson, A.). Materials Science International Services GmbH, Stuttgart, Germany (2022)
Al–Fe–W (Aluminium-Iron-Tungsten). In: Ternary Alloys: Selected Al–Fe–X Ternary Systems for Industrial Applications, Vol. 545.
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21, pp. 474 - 515. Materials Science International Services GmbH, Stuttgart, Germany (2022)
Al–Fe–Ti (Aluminium-Iron-Titanium). In: Ternary Alloys: Selected Al–Fe–X Ternary Systems for Industrial Applications, Vol. 547.
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Iron-Based Intermetallics. In: High-Performance Ferrous Alloys, pp. 423 - 458 (Ed. Rana, R.). Springer Nature Switzerland, Cham, Switzerland (2021)
548.
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Effenberg, G.). MSI, Materials Science International, Stuttgart (2020)
Al–Ti Binary Phase Diagram Evaluation. In: MSI Eureka, 20.15634.2.4 (Ed. 549.
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Al–Mo Binary Phase Diagram Evaluation. In: MSI Eureka, 20.12123.3.1, 3 Ed., pp. 1 - 9 (Ed. Watson, A.). MSI, Materials Science International Services GmbH, Stuttgart, Stuttgart, Germany (2020)
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Effenberg, G.). MSI, Materials Science International, Stuttgart, Germany (2019)
Fe–Nb–Ti Ternary Phase Diagram Evaluation. In: MSI Eureka, 10.36946.1.5, pp. 1 - 26 (Ed. 551.
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Effenberg, G.). MSI, Materials Science International, Stuttgart (2019)
Al–Co–Fe Ternary Phase Diagram Evaluation. In: MSI Eureka, 10.15955.3.7 (Ed. 552.
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Effenberg, G.). MSI, Materials Science International, Stuttgart, Germany (2018)
Co–Ti–Zr Ternary Phase Diagram Evaluation. In: MSI Eureka, 10.15651.1.8 (Ed. 553.
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In Situ μLaue: Instrumental Setup for the Deformation of Micron Sized Samples. In: Neutrons and Synchrotron Radiation in Engineering Materials Science: From Fundamentals to Applications: Second Edition, pp. 425 - 438 (Eds.
554.
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Al–Fe–Nb Ternary Phase Diagram Evaluation. In: MSI Eureka, pp. 1 - 40. MSI, Materials Science International, Stuttgart, Germany (2017)
555.
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Laue Microdiffraction at the ESRF. In: Strain and Dislocation Gradients from Diffraction: Spatially-Resolved Local Structure and Defects, 5, pp. 156 - 204 (Eds. Barabash, R.; Ice, G.). Imperial College Press, London, UK (2014)
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Dehm, G.). Wiley VCH Verlag, Weinheim, Germany (2012)
In-situ TEM Straining Experiments: Recent Progress in Stages and Small-Scale Mechanics. In: In-situ Electron Microscopy: SEM and TEM Applications in Physics, Chemistry and Materials Science, pp. 227 - 254 (Ed. 557.
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Werkstoffcharakterisierung der Profilträger des Glockenstuhls der Hauptkirche St. Michaelis in Hamburg. In: Fortschritte in der Metallographie, 41, pp. 203 - 208 (Eds. Kneissl, A. B.-P. /. A.; DGM). Günter Petzow, Aachen, Germany (2009)
Proceedings (5)
558.
Proceedings
Intermetallics 2023. Intermetallics 2023, Bad Staffelstein, Germany, October 02, 2023 - October 06, 2023. Conventus Congressmanagement & Marketing GmbH, Jena, Germany (2023), 122 pp.
559.
Proceedings
Intermetallics 2021. Intermetallics 2021, Kloster Banz, Bad Staffelstein, Germany, October 04, 2021 - October 08, 2021. Conventus Congressmanagement & Marketing GmbH, Jena, Germany (2021), 208 pp.
560.
Proceedings
Proceedings Intermetallics 2019. Intermetallics 2019, Educational Center Kloster Banz, Bad Staffelstein, Germany, September 30, 2019 - October 04, 2019. Conventus Congressmanagement & Marketing GmbH, Jena, Germany (2019)