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Effect of Processing on Microstructure and Physical Properties of Three Nickel‐Based Superalloys with Different Hardening Mechanisms
Authors:Annika Strondl  Srdjan Milenkovic  André Schneider  Uta Klement  Georg Frommeyer
Affiliation:1. Department of Materials Technology, Max‐Planck‐Institut für Eisenforschung GmbH, Max‐Planck‐Stra?e 1, D‐40237 Düsseldorf, Germany;2. Present address: Swerea KIMAB AB, Isafjordsgatan 28A, SE‐164 40 Kista, Sweden;3. Present address: IMDEA Materials, Parque Científico de la Universidad Carlos III de Madrid Avda. del Mar Mediterráneo, 22, 28918 Leganés, Spain;4. Present address: V & M DEUTSCHLAND GmbH, VRD Rather Kreuzweg 106, D‐40472 Düsseldorf, Germany;5. Department of Materials and Manufacturing Technology, Chalmers University of Technology, SE‐412 96 Gothenburg, Sweden
Abstract:The nickel‐based superalloys Inconel alloy 600, Udimet alloy 720, and Inconel alloy 718 were produced by electron beam melting (EBM), casting, and directional solidification (DS). The distance between dendrites and the size of the precipitates indicated the difference in solidification rates between the three processes. In this study, the solidification rate was fastest with EBM, closely followed by casting, whereas it was much slower with DS. In the directional solidified materials the <100> direction was the fastest and thus, preferred growth direction. The EBM samples show a sharp (001)100] texture in the building direction and in the two scanning directions of the electron beam. Macrosegregation was observed in some cast and directionally solidified samples, but not in the EBM samples. The melting temperatures are in good agreement with literature and the narrow melting interval of IN600 compare to UD720 and IN718 might reduce the risk of incipient melting during EBM processing. Porosity was observed in the EBM samples and the reasons are discussed. However, EBM seems to be a feasible process route to produce nickel‐based superalloys with well‐defined texture, no macrosegregation and a rapidly solidified microstructure.
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