Effects of Post-Process on the Microstructure and Mechanical Performance of an LPBF-Fabricated Fe-Based Alloy
Abstract
1. Introduction
2. Materials and Methods
2.1. Experimental Materials and LPBF Process
2.2. Thermodynamic Calculation
2.3. Heat Treatment
2.4. Microstructure Characterization and Mechanical Properties Testing
2.5. Alloy Design
3. Results and Discussion
3.1. Processability Analysis
3.2. Microstructure Analysis
3.3. Crystallographic Orientation and Grain Boundary Characteristics
3.4. Mechanical Properties and Structure–Property Correlation
3.5. Possible Strengthening Mechanisms
3.6. Fractography
4. Conclusions
- (1)
- A novel Fe-based alloy, designated as AMSD, was successfully designed through a machine-learning-assisted high-throughput alloy design strategy and fabricated by LPBF without obvious solidification cracking. The alloy exhibited excellent processability over a relatively broad processing window. In the as-built state, the microstructure consisted of a typical rapidly solidified cellular structure and epitaxial columnar grains, accompanied by pronounced intercellular segregation and a continuous network-like phase enriched in strong carbide-forming elements.
- (2)
- After post-processing, the continuous intercellular segregation network in the as-built state was eliminated, while discrete Mo-W-Ti-rich grain-boundary borides were clearly observed in the AC and WQ samples. Microstructural evolution was strongly governed by cooling kinetics: the slower air-cooling (AC) route allowed more extensive coarsening of grain-boundary borides, whereas water quenching (WQ) retained a finer boride population by suppressing further diffusional growth.
- (3)
- The mechanical properties of the AMSD alloy can be effectively tailored by controlling the cooling rate after solution treatment. The air-cooled sample exhibits an ultra-high UTS of 1436 ± 45 MPa with moderate ductility (9.4 ± 0.4%), whereas the water-quenched sample demonstrates significantly improved elongation (18.2 ± 0.3%) with a UTS of 1072 ± 15 MPa, achieving an excellent strength–ductility balance.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Wei, S.; Zhang, J.; Zhang, L.; Zhang, Y.; Song, B.; Wang, X.; Fan, J.; Liu, Q.; Shi, Y. Laser powder bed fusion additive manufacturing of NiTi shape memory alloys: A review. Int. J. Extrem. Manuf. 2023, 5, 032001. [Google Scholar] [CrossRef]
- Yang, G.; Xie, Y.; Zhao, S.; Qin, L.; Wang, X.; Wu, B. Quality Control: Internal Defects Formation Mechanism of Selective Laser Melting Based on Laser-powder-melt Pool Interaction: A Review. Chin. J. Mech. Eng. Addit. Manuf. Front. 2022, 1, 100037. [Google Scholar] [CrossRef]
- Gu, D.; Meiners, W.; Wissenbach, K.; Poprawe, R. Laser additive manufacturing of metallic components: Materials, processes and mechanisms. Int. Mater. Rev. 2012, 57, 133–164. [Google Scholar] [CrossRef]
- DebRoy, T.; Wei, H.; Zuback, J.; Mukherjee, T.; Elmer, J.; Milewski, J.; Beese, A.; Wilson-Heid, A.; De, A.; Zhang, W. Additive manufacturing of metallic components—Process, structure and properties. Prog. Mater. Sci. 2018, 92, 112–224. [Google Scholar] [CrossRef]
- Jamshidi, P.; Panwisawas, C.; Langi, E.; Cox, S.C.; Feng, J.; Zhao, L.; Attallah, M.M. Development, Characterisation, and Modelling of Processability of Nitinol Stents using Laser Powder Bed Fusion. J. Alloys Compd. 2022, 909, 164681. [Google Scholar] [CrossRef]
- Domashenkov, A.; Plotnikova, A.; Movchan, I.; Bertrand, P.; Peillon, N.; Desplanques, B.; Saunier, S.; Desrayaud, C. Microstructure and physical properties of a Ni/Fe-based superalloy processed by Selective Laser Meling. Addit. Manuf. 2017, 15, 66–77. [Google Scholar] [CrossRef]
- Ren, L.; Lin, C.-Q.; Li, J.; Liu, H.; Jian, Z.; Jian, J. Fabrication of an Fe–Mn–Si based alloy with enhanced shape memory performance by laser powder bed fusion from elemental powder mixtures. J. Mater. Res. Technol. 2025, 38, 2655–2665. [Google Scholar] [CrossRef]
- Zhang, H.; Hou, Y.; Wang, X.; Li, X.; He, Y.; Li, F.; Lu, Y.; Su, H. High throughput in-situ synthesis of Fe-Cr-Ni alloys via laser powder bed fusion: Exploring the microstructure and property evolution. Addit. Manuf. 2024, 81, 103996. [Google Scholar] [CrossRef]
- Zhang, Z.; Han, Q.; Liu, Z.; Gao, J.; Wang, L.; Liu, H.; Wang, R.; Ma, T.; Gao, Z. Combined effects of heat treatment and TiB2 content on the high-temperature tensile performance of TiB2-modified Ni-based GH3230 alloy processed by laser powder bed fusion. Mater. Sci. Eng. A 2022, 861, 144379. [Google Scholar] [CrossRef]
- Wu, D.; Han, Q.; Wu, M.; Zhang, H.; Wang, Y.; Lu, K.; Fan, H.; Setchi, R. Laser powder bed fusion of a composition-modified IN738 alloy based on thermodynamic calculations. Mater. Sci. Eng. A 2025, 922, 147605. [Google Scholar] [CrossRef]
- Dejene, N.D.; Lemu, H.G. Current Status and Challenges of Powder Bed Fusion-Based Metal Additive Manufacturing: Literature Review. Metals 2023, 13, 424. [Google Scholar] [CrossRef]
- Kuang, M.; Wang, L.; Wu, D.; Zhang, Z.; Zhao, P.; Wang, Z.; Liu, G.; Xin, J.; Han, Q. Effects of TiB2 on cracking suppression and bimodal grain structures formation in GH2132 superalloy fabricated by laser powder bed fusion. J. Alloys Compd. 2026, 1050, 185845. [Google Scholar] [CrossRef]
- Galbusera, F.; Demir, A.; Platl, J.; Turk, C.; Schnitzer, R.; Previtali, B. Processability and cracking behaviour of novel high-alloyed tool steels processed by Laser Powder Bed Fusion. J. Mater. Process. Technol. 2022, 302, 117435. [Google Scholar] [CrossRef]
- Zhang, H.; Han, Q.; Zhang, Z.; Liang, Y.; Wang, L.; Wan, H.; Lu, K.; Gao, Z. Combined effects of carbon content and heat treatment on the high-temperature tensile performance of modified IN738 alloy processed by laser powder bed fusion. Mater. Sci. Eng. A 2025, 920, 147538. [Google Scholar] [CrossRef]
- Wu, D.; Feng, J.; Wang, Y.; Wang, Z.; Wu, M.; Han, Q. Laser Powder Bed Fusion of a Novel Crack-Free γ′ Phase-Strengthened Ni-Based Alloy. Materials 2025, 18, 237. [Google Scholar] [CrossRef] [PubMed]
- Bassini, E.; Sivo, A.; Martelli, P.; Rajczak, E.; Marchese, G.; Calignano, F.; Biamino, S.; Ugues, D. Effects of the Solution and First Aging Treatment Applied to As-Built and Post-HIP CM247 Produced Via Laser Powder Bed Fusion (Lpbf). J. Alloys Compd. 2022, 905, 164213. [Google Scholar] [CrossRef]
- Sun, Z.; Chen, F.; Li, J.; Yang, K.; Tang, X. Effects of heat treatment on microstructure, mechanical properties and irradiation response of LPBF GH3535 superalloy. Mater. Charact. 2025, 229, 115587. [Google Scholar] [CrossRef]
- Chen, Z.; Zhang, L.; Song, Z.; Wu, X.; Zhang, G.; Han, F. A new method of surface strengthening for GH4169 superalloy based on cryogenic pretreatment and ultrasonic shot peening. Mater. Sci. Eng. A 2026, 953, 149794. [Google Scholar] [CrossRef]
- Jiang, X.; Du, Y.; Peng, Y.; Chen, H.; Lei, X. Laser remelting post-treatment: Improving microstructure and tribological properties of laser cladded Stellite6 coating on 2507 duplex stainless steel. Opt. Laser Technol. 2026, 193, 114236. [Google Scholar] [CrossRef]
- Shreyasi, V.; Srinivas, N. Enhancement in Low Cycle Fatigue Life of LPBF processed Inconel 625 Superalloy by heat treatment. J. Alloys Compd. 2025, 1027, 180637. [Google Scholar] [CrossRef]
- Wu, D.; Zhang, Z.; Guo, Z.; Hu, D.; Wang, Z.; Wu, W.; Wu, S.; Yang, S.; Xu, Y.; Yan, W.; et al. Analysis of the intermediate temperature brittleness of LPBF-fabricated Ni-based alloys with high γ′ phase fraction. Mater. Sci. Eng. A 2026, 953, 149713. [Google Scholar] [CrossRef]
- Ren, R.; Yao, Y.; Han, D.; Fang, J.; Chen, C. Effects of Post-Treatment on the Microstructure Evolution and High-Temperature Oxidation Properties of Nickel-Based Superalloys Fabricated by Selective Laser Melting. Metals 2025, 15, 708. [Google Scholar] [CrossRef]
- Xu, C.; Wang, J.; Zhang, J.; Zhang, Z.; Zhong, F.; Hao, M.; Hu, S.; Wei, G.-D.; Guan, S. Effect of heat treatment cooling way on the microstructure and mechanical property of Mg-Sc alloys. Mater. Des. 2025, 258, 114697. [Google Scholar] [CrossRef]
- Yang, J.; Zhang, X.; Kang, X.; Li, H.; Hou, H.; Yang, L.; Zhao, Y. The dynamic recrystallization microstructure characterization of hot-rolled Fe50Mn30Co10Cr10 high-entropy alloy during different cooling rate. J. Mater. Res. Technol. 2025, 35, 7441–7454. [Google Scholar] [CrossRef]
- Yang, K.; An, T.; Qu, J.; Du, J.; Qin, H.; Zheng, S.; Bi, Z. Effects of solution cooling rate on the grain boundary and mechanical properties of GH4710 alloy. Mater. Sci. Eng. A 2022, 832, 142459. [Google Scholar] [CrossRef]
- Wang, C.; Fu, H.; Jiang, L.; Xue, D.; Xie, J.-X. A property-oriented design strategy for high performance copper alloys via machine learning. npj Comput. Mater. 2019, 5, 87. [Google Scholar] [CrossRef]
- Zhang, H.; Fu, H.; Zhu, S.; Yong, W.; Xie, J.-X. Machine Learning Assisted Composition Effective Design for Precipitation Strengthened Copper Alloys. Acta Mater. 2021, 215, 117118. [Google Scholar] [CrossRef]
- Pan, C.; Lin, W.; Zhou, J.; Jian, W.; Chan, K.C.; Chan, Y.L.; Ren, L. Novel machine learning driven design strategy for high strength Zn Alloys optimization with multiple constraints. npj Comput. Mater. 2025, 11, 169. [Google Scholar] [CrossRef]
- Lu, Z.; Kapoor, I.; Li, Y.; Liu, Y.; Zeng, X.; Wang, L. Machine learning driven design of high-performance Al alloys. J. Mater. Inform. 2024, 4, 19. [Google Scholar] [CrossRef]
- Su, J.; Chen, L.; Petegem, S.V.; Jiang, F.; Li, Q.; Luan, J.; Sing, S.L.; Wang, J.; Tan, C. Additive manufacturing metallurgy guided machine learning design of versatile alloys. Mater. Today 2025, 88, 240–250. [Google Scholar] [CrossRef]
- Kou, S. A criterion for cracking during solidification. Acta Mater. 2015, 88, 366–374. [Google Scholar] [CrossRef]
- Lee, J.-W.; Park, C.; Lee, B.D.; Park, J.; Goo, N.H.; Sohn, K. A machine-learning-based alloy design platform that enables both forward and inverse predictions for thermo-mechanically controlled processed (TMCP) steel alloys. Sci. Rep. 2021, 11, 11012. [Google Scholar] [CrossRef]
- Zhang, H.; Choi, J.; Moon, S.K.; Ngo, T.H. A multi-objective optimization framework for aerosol jet customized line width printing via small data set and prediction uncertainty. J. Mater. Process. Technol. 2020, 285, 116779. [Google Scholar] [CrossRef]
- Theska, F.; Street, S.; Lison-Pick, M.; Primig, S. Grain boundary microstructure-property relationships in the cast & wrought Ni-based superalloy René 41 with boron and carbon additions. Acta Mater. 2023, 258, 119235. [Google Scholar] [CrossRef]
- Wang, C.; Qin, M.; Lei, T.; He, Y.; Kisslinger, K.; Rupert, T.; Luo, J.; Xin, H. Synergic grain boundary segregation and precipitation in W- and W-Mo-containing high-entropy borides. J. Eur. Ceram. Soc. 2021, 41, 5380–5387. [Google Scholar] [CrossRef]
- Thijs, L.; Verhaeghe, F.; Craeghs, T.; Humbeeck, J.; Kruth, J. A study of the microstructural evolution during selective laser melting of Ti–6Al–4V. Acta Mater. 2010, 58, 3303–3312. [Google Scholar] [CrossRef]
- Lan, J.; Huang, H.; Mao, H.; Hua, L. Phase transformation and grain growth behaviors of superalloy IN718 during heat treatment. Mater. Today Commun. 2020, 24, 101347. [Google Scholar] [CrossRef]
- Zhao, C.; Li, D.; Liu, X.; Sun, M.; Wang, Z.; Luo, Z.; Zhang, W. Improving the Thermal Stability of the Fine-Grained Structure in the Cu-15Ni-8Sn Alloy during Solution Treatment by the Additions of Si and Ti. Materials 2023, 16, 1252. [Google Scholar] [CrossRef]
- Yin, J.; Ma, D.; Zeng, T.; Wang, C.; Chi, H.; Li, X.; Zhou, J. The effects of hot isostatic pressing temperature and subsequent heat treatment on the microstructure and tensile properties of laser powder bed fused IN718 nickel-based superalloy. J. Alloys Compd. 2025, 1020, 179407. [Google Scholar] [CrossRef]
- Sun, D.; Song, W.; Wang, G.; Liang, J.; Xie, J.; Sun, F.; Zhou, Y.; Li, J. Asynchronous recrystallization in LPBF GH5188 alloy driven by asymmetric driving force and Zener pinning. Mater. Res. Lett. 2026, 14, 612–621. [Google Scholar] [CrossRef]
- Jeong, W.; Suh, J.; Kang, S.H.; An, T.; Chavan, A.; Kim, S.H.; Han, H.N.; Ryu, H.J. Laser-driven in-situ synthesis of boride-reinforced Inconel 718 for overcoming high temperature deformation instabilities. Compos. Struct. 2026, 381, 120028. [Google Scholar] [CrossRef]
- He, X.; Shang, X.K.; He, J.; He, B. Influence of dislocation cell on the thermomechanical stability of 316 L fabricated by laser powder bed fusion. Mater. Charact. 2024, 217, 114335. [Google Scholar] [CrossRef]
- Bai, P.; Wang, M.; Li, J.; Bai, J.; Zhang, J.; Wang, Z.; Niu, B.; Xing, J.; Liao, Y. Effects of Heat Treatment on Microstructure and Mechanical Properties of Re/Inconel 718 Composites Fabricated by Laser Powder Bed Fusion. J. Mater. Res. Technol. 2025, 40, 1466–1485. [Google Scholar] [CrossRef]
- Chen, Y.; Li, D.; Yan, Z.; Bai, S.; Xie, R.; Sheng, J. Focus review on γ′ coarsening in theorical development and application in Ni-base superalloys and high/medium-entropy alloys. Mater. Today Nano 2024, 25, 100507. [Google Scholar] [CrossRef]
- Kumar, S.; Pandey, P.; Chattopadhyay, K. Influence of interfacial and strain energies on γ′ coarsening kinetics in complex concentrated alloys. Materialia 2024, 33, 102018. [Google Scholar] [CrossRef]
- Xiong, Z.; Li, W.; Lu, S.; Xu, W.; Vitos, L. Formation energy of γ/γ′′ interfaces in Inconel 718 superalloys. Mater. Today Commun. 2025, 49, 114220. [Google Scholar] [CrossRef]
- Bignon, M.; Bernacki, M. Particle pinning during grain growth—A new analytical model for predicting the mean limiting grain size but also grain size heterogeneity in a 2D polycrystalline context. Acta Mater. 2024, 271, 120174. [Google Scholar] [CrossRef]
- Swaminathan, K.; Andersson, J. Recrystallization behavior during postprocessing of an additively manufactured nickel-based superalloy. Metall. Mater. Trans. A 2026, 57, 2157–2175. [Google Scholar] [CrossRef]
- Li, J.; Jeffs, S.; Whittaker, M.; Martin, N. Boride formation behaviour and their effect on tensile ductility in cast TiAl-based alloys. Mater. Des. 2020, 195, 109064. [Google Scholar] [CrossRef]









| Alloy | Cr | Ni | Mo | W | Al | Ti | C | B | Si | Mn | Fe |
|---|---|---|---|---|---|---|---|---|---|---|---|
| AMSD | 10.06 | 37.6 | 1.96 | 1.72 | 1.99 | 4.90 | 0.072 | 0.17 | 0.38 | 0.26 | Bal. |
| Point | Cr | Ni | Mo | W | Al | Ti | C | B | Si | Fe |
|---|---|---|---|---|---|---|---|---|---|---|
| A | 8.29 | 35.25 | 0.85 | 3.71 | 2.45 | 5.20 | 6.79 | 0 | 0.05 | 37.4 |
| B | 7.34 | 38.35 | 2.46 | 2.04 | 2.09 | 4.64 | 7.1 | 0 | 1.27 | 34.7 |
| C | 10.96 | 27.96 | 4.03 | 3.86 | 1.35 | 5.68 | 9.94 | 0.17 | 0.05 | 35.2 |
| D | 7.04 | 35.22 | 3.06 | 1.65 | 1.41 | 2.92 | 5.98 | 0.85 | 0.14 | 41.48 |
| E | 7.82 | 3.81 | 15.22 | 29.11 | 0.19 | 11.4 | 3.91 | 14.19 | 0.58 | 13.73 |
| F | 9.37 | 33.55 | 2.98 | 2.43 | 1.48 | 2.10 | 4.11 | 0.74 | 0.77 | 42.11 |
| G | 9.55 | 33.51 | 2.69 | 2.48 | 2.16 | 3.47 | 5.63 | 1.14 | 0.19 | 38.03 |
| H | 7.89 | 4.53 | 18.94 | 27.83 | 0.23 | 12.70 | 4.15 | 14.70 | 0.24 | 8.53 |
| I | 9.44 | 36.66 | 1.42 | 1.79 | 2.53 | 3.62 | 4.49 | 0.74 | 0.60 | 38.39 |
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Wang, Z.; Xiao, J.; Chen, P.; Kuang, M.; Wu, D.; Liu, G.; Wang, L.; Han, Q. Effects of Post-Process on the Microstructure and Mechanical Performance of an LPBF-Fabricated Fe-Based Alloy. Materials 2026, 19, 2262. https://doi.org/10.3390/ma19112262
Wang Z, Xiao J, Chen P, Kuang M, Wu D, Liu G, Wang L, Han Q. Effects of Post-Process on the Microstructure and Mechanical Performance of an LPBF-Fabricated Fe-Based Alloy. Materials. 2026; 19(11):2262. https://doi.org/10.3390/ma19112262
Chicago/Turabian StyleWang, Zhijie, Jiarong Xiao, Peitao Chen, Muyi Kuang, Defan Wu, Guojie Liu, Liqiao Wang, and Quanquan Han. 2026. "Effects of Post-Process on the Microstructure and Mechanical Performance of an LPBF-Fabricated Fe-Based Alloy" Materials 19, no. 11: 2262. https://doi.org/10.3390/ma19112262
APA StyleWang, Z., Xiao, J., Chen, P., Kuang, M., Wu, D., Liu, G., Wang, L., & Han, Q. (2026). Effects of Post-Process on the Microstructure and Mechanical Performance of an LPBF-Fabricated Fe-Based Alloy. Materials, 19(11), 2262. https://doi.org/10.3390/ma19112262

