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Article

Hot Forging of DIN 8555 E6-UM-60 Alloy Produced by Directed Energy Deposition: Understanding the Metallurgical Effects

by
Carlos Antônio Ferreira
1,
Lirio Schaeffer
1,
Anderson Daleffe
2,
Henrique Cechinel Casagrande
3,*,
Gilson de March
2 and
Joélson Vieira da Silva
2
1
Department Metallurgical Engineering, Universidade Federal do Rio Grande do Sul (UFRGS), Porto Alegre 90010-150, Brazil
2
Department Additive Manufacturing, Centro Universitário SATC (UNISATC), Criciúma 88805-380, Brazil
3
Department Metallurgical Engineering, Universidade Federal de Santa Catarina (UFSC), Florianópolis 88040-900, Brazil
*
Author to whom correspondence should be addressed.
Materials 2026, 19(2), 373; https://doi.org/10.3390/ma19020373 (registering DOI)
Submission received: 17 December 2025 / Revised: 12 January 2026 / Accepted: 13 January 2026 / Published: 16 January 2026

Abstract

This study investigates a hybrid processing route that integrates localized fusion-based additive manufacturing and hot forging for the production of complex-shaped components, with emphasis on metallurgical integrity and mechanical performance. The DIN 8555 E6-UM-60 alloy, traditionally classified as martensitic and applied under severe wear conditions, exhibited atypical metallurgical behavior during hybrid processing, notably the consistent formation of chromium carbides under specific thermomechanical conditions. Metallographic analyses, microhardness measurements, thermographic monitoring, hot tensile tests, and room-temperature tensile tests were performed to establish correlations between microstructure, thermal history, and mechanical response. Specimens produced by additive manufacturing and subsequently hot forged showed a significant reduction in porosity, improved microstructural homogeneity, and partial retention of hardening phases, enabling discussion of recrystallization mechanisms, phase stabilization, and precipitation phenomena in martensitic alloys processed by additive manufacturing. Hot tensile tests revealed limited hot workability of the alloy, while room-temperature tensile tests led to premature fracture, with failure consistently initiating at pre-existing microcracks formed during the forging stage. Although detrimental, these microcracks provide valuable insight into critical processing conditions and ductility limits of the material. Overall, the hybrid route demonstrates strong potential for industrial applications, highlighting the importance of precise thermomechanical cycle control to mitigate defects and enhance structural reliability.
Keywords: hot forging; additive manufacturing; 3D printing; rapid prototyping; microstructure; chromium carbides hot forging; additive manufacturing; 3D printing; rapid prototyping; microstructure; chromium carbides

Share and Cite

MDPI and ACS Style

Ferreira, C.A.; Schaeffer, L.; Daleffe, A.; Casagrande, H.C.; de March, G.; da Silva, J.V. Hot Forging of DIN 8555 E6-UM-60 Alloy Produced by Directed Energy Deposition: Understanding the Metallurgical Effects. Materials 2026, 19, 373. https://doi.org/10.3390/ma19020373

AMA Style

Ferreira CA, Schaeffer L, Daleffe A, Casagrande HC, de March G, da Silva JV. Hot Forging of DIN 8555 E6-UM-60 Alloy Produced by Directed Energy Deposition: Understanding the Metallurgical Effects. Materials. 2026; 19(2):373. https://doi.org/10.3390/ma19020373

Chicago/Turabian Style

Ferreira, Carlos Antônio, Lirio Schaeffer, Anderson Daleffe, Henrique Cechinel Casagrande, Gilson de March, and Joélson Vieira da Silva. 2026. "Hot Forging of DIN 8555 E6-UM-60 Alloy Produced by Directed Energy Deposition: Understanding the Metallurgical Effects" Materials 19, no. 2: 373. https://doi.org/10.3390/ma19020373

APA Style

Ferreira, C. A., Schaeffer, L., Daleffe, A., Casagrande, H. C., de March, G., & da Silva, J. V. (2026). Hot Forging of DIN 8555 E6-UM-60 Alloy Produced by Directed Energy Deposition: Understanding the Metallurgical Effects. Materials, 19(2), 373. https://doi.org/10.3390/ma19020373

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