Abstract
In this work, by using multi-scale characterizations from electron channeling contrast imaging (ECCI) to atom probe tomography (APT), we directly evidenced that the massive cracking events in the selective-laser-melted (SLMed) Haynes 230 superalloy are due to the continuous decoration of an M23C6-type thin film at grain boundaries. The high-melting-point nature of the carbide rules out the possibility of liquidation cracking, while the long and straight film surface facilitates stress-induced solid-state cracking. Impurities, Si, Mn and Fe, greatly enhance the cracking susceptibility despite the interesting fact that they are strongly depleted from the carbide.
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He, J., Wang, R., Li, N., Xiao, Z., Gu, J., Yu, H., … Song, M. (2023). Unravelling the origin of multiple cracking in an additively manufactured Haynes 230. Materials Research Letters, 11(4), 281–288. https://doi.org/10.1080/21663831.2022.2148491
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