Unveiling crack mitigation pathways in powder bed fusion–laser beam of CM247LC: an operando X-ray radiography study of Hf and nano-Y2O3 additions

Abstract Cracking presents a major hurdle for processing non-weldable Ni-base superalloys, such as CM247LC, by powder bed fusion–laser beam (PBF–LB). This study directly observes cracking behavior in standard CM247LC and two admixed alloys (CM247LC + 1 wt.% Hf and CM247LC + 1 wt.% nano-Y 2 O 3 ) using operando synchrotron X-ray radiography synchronized with acoustic emission (AE). Our real-time data confirm extensive cracking in the standard alloy is identified to be primarily solidification cracking. Both Y 2 O 3 and Hf additions mitigate solidification cracking, though through distinct mechanisms. Nano-Y 2 O 3 addition alters the processing regime from keyhole to conduction mode. Scheil solidification simulations predict a narrower solidification range and lower solidification cracking index (SCI). This indicates that a combination of processing regime shift along with modification in solidification as the primary drivers for crack suppression upon addition of nano-Y 2 O 3 , despite increased lack of fusion and complex oxide formation. Hf-addition mitigated cracking via enhanced segregation at interdendritic regions, promoting beneficial carbides and improved liquid backfilling. Scheil simulations for alloy with Hf-addition predicted low SCI compared to standard CM247LC due to increased liquid availability in final solidification stages. These insights highlight that nearly crack-free PBF–LB of non-weldable superalloys can be achieved through both the powder modifications.

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Journal
Progress in Additive Manufacturing
Published
2026-08-03
DOI
https://doi.org/10.1007/s40964-026-01876-5
Primary Topic
Additive Manufacturing Materials and Processes
Type
article
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article

Unveiling crack mitigation pathways in powder bed fusion–laser beam of CM247LC: an operando X-ray radiography study of Hf and nano-Y2O3 additions

Federica Marone, Gowtham Soundarapandiyan, Annapaola Parrilli, Ahmed Fardan et al.
Progress in Additive Manufacturing
Additive Manufacturing Materials and Processes
article

Unveiling crack mitigation pathways in powder bed fusion–laser beam of CM247LC: an operando X-ray radiography study of Hf and nano-Y2O3 additions

Federica Marone, Gowtham Soundarapandiyan, Annapaola Parrilli, Ahmed Fardan, Bharat Mehta, Eduard Hryha, Sneha Goel, S. Van Petegem, Vigneashwara Pandiyan, E. Polatidis, Camille Pauzon, Sofia Kazi, Håkan Brodin
article en

Abstract

Abstract Cracking presents a major hurdle for processing non-weldable Ni-base superalloys, such as CM247LC, by powder bed fusion–laser beam (PBF–LB). This study directly observes cracking behavior in standard CM247LC and two admixed alloys (CM247LC + 1 wt.% Hf and CM247LC + 1 wt.% nano-Y 2 O 3 ) using operando synchrotron X-ray radiography synchronized with acoustic emission (AE). Our real-time data confirm extensive cracking in the standard alloy is identified to be primarily solidification cracking. Both Y 2 O 3 and Hf additions mitigate solidification cracking, though through distinct mechanisms. Nano-Y 2 O 3 addition alters the processing regime from keyhole to conduction mode. Scheil solidification simulations predict a narrower solidification range and lower solidification cracking index (SCI). This indicates that a combination of processing regime shift along with modification in solidification as the primary drivers for crack suppression upon addition of nano-Y 2 O 3 , despite increased lack of fusion and complex oxide formation. Hf-addition mitigated cracking via enhanced segregation at interdendritic regions, promoting beneficial carbides and improved liquid backfilling. Scheil simulations for alloy with Hf-addition predicted low SCI compared to standard CM247LC due to increased liquid availability in final solidification stages. These insights highlight that nearly crack-free PBF–LB of non-weldable superalloys can be achieved through both the powder modifications.

Progress in Additive Manufacturing
Institut polytechnique de Grenoble (FR), Centre National de la Recherche Scientifique (FR), University of Turku (FI), University of Patras (GR), Paul Scherrer Institute (CH), Thermo Fisher Scientific (Sweden) (SE), Science et Ingénierie des Matériaux et Procédés (FR), Siemens (Sweden) (SE), Chalmers University of Technology (SE), Swiss Federal Laboratories for Materials Science and Technology (CH), VTT Technical Research Centre of Finland (FI), Université Grenoble Alpes (FR)
VINNOVA, Chalmers Tekniska Högskola, Paul Scherrer Institut, Universität Bremen
Openalex Percentile: Top 17%
Additive Manufacturing Materials and Processes
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