High-Temperature Creep and Microstructure Evolution of Alloy 800H Weldments with Inconel 625 and Haynes 230 Filler Materials
Abstract
:1. Introduction
2. Materials and Experiments
2.1. Materials
2.2. Welding Process and Specimen Fabrication
2.3. Hardness Measurement
2.4. High-Temperature Tensile and Creep Tests
2.5. Microstructure Examination
3. Results
3.1. Hardness
3.2. High-Temperature Tensile Test
3.3. High-Temperature Creep Test
3.4. Microstructures
3.4.1. As-Received Alloy 800H Base Metal
3.4.2. As-Welded Microstructure
3.4.3. Microstructure after Creep Rupture
FZ of Inconel 625 and Haynes 230 Filler Specimens (Region 1 in Figure 6)
HAZ Adjacent to Fusion Boundary (Region 2 in Figure 6)
Base Metal Close to Rupture Surface (Region 3 in Figure 6)
High-Temperature Ageing Structure in Incoloy 800H (Region 4 in Figure 6)
Fractography
4. Discussion
4.1. High-Temperature Creep Deformation and Mechanisms
4.2. Precipitate Evolution during High-Temperature Creep
5. Conclusions
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- High-temperature apparent tensile yield strength and creep resistance of Incoloy 800H welds at 80 MPa and 760 °C were significantly enhanced by the addition of Inconel 625 and Haynes 230 into the Alloy 800H weldments. Both of the weldments showed longer creep rupture time but lower rupture strain compared with the BM specimen.
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- Significant dislocation slip and interaction with precipitates were observed in the microstructure, indicating a high-temperature power-law creep mechanism. Dislocation bypassing through the Orowan mechanism accompanied by climb and cutting facilitated dislocation slips during high-temperature creep deformation.
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- Microstructural characterization revealed that extensive precipitation took place after the prolonged creep testing at high temperature. A large number of sub-micron-sized carbides (MC and M23C6) were observed in the microstructure of FZ, HAZ adjacent to the fusion boundary, and base metals under various conditions (as-received, as-welded, and creep-tested). The varied sizes and locations of the M23C6 and MC carbides suggest a complex microstructural evolution during the creep test.
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- The weldments with Inconel 625 filler material exhibited detrimental δ and Laves phases in the weld metal after the creep test. Although the failure occurred in the base metal rather than in the fusion zone under the current test conditions, the presence of these phases could cause potential crack initiation after prolonged high-temperature ageing.
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- The weldment with Haynes 230 filler material demonstrated superior phase stability and improved creep rupture properties compared to the one with Inconel 625 filler material. This suggests that Haynes 230 could be a promising filler material for further investigations into Alloy 800H applications.
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Element | Fe | Ni | Cr | Mo | Nb | Co | Mn | C | Al | Ti | Si | B | W |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
AR Alloy 800H | 45.6 | 30.3 | 20.6 | 0.7 | - | 0.05 | 0.7 | 0.08 | 0.49 | 0.52 | 0.4 | - | - |
Inconel 625 | <5.0 | >58.0 | 20.0 -23.0 | 8.0 -10.0 | 3.15 -4.15 | <1.00 | <0.50 | <0.10 | <0.40 | <0.40 | <0.50 | - | - |
Haynes 230 | <3.0 | 57.0 Bal | 22.0 | 2.0 | <0.50 | <5.00 | 0.50 | 0.10 | 0.30 | <0.10 | 0.40 | <0.015 | 14.0 |
Material | Minimum Strain Rate (h−1) | Strain at Rupture (%) | Time to Tertiary Stage (h), Tt | Time to Rupture (h), TR |
---|---|---|---|---|
Incoloy 800H BM | 10−4 | 44.96 | 60 | 467 |
Weldment with Inconel 625 filler | 10−5 | 9.66 | 320 | 1091 |
Weldment with Haynes 230 filler | 10−5 | 10.51 | 456 | 1643 |
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Li, W.; Xiao, L.; Walters, L.; Dong, Q.; Ienzi, M.; Sloan, R. High-Temperature Creep and Microstructure Evolution of Alloy 800H Weldments with Inconel 625 and Haynes 230 Filler Materials. Appl. Sci. 2024, 14, 1347. https://doi.org/10.3390/app14041347
Li W, Xiao L, Walters L, Dong Q, Ienzi M, Sloan R. High-Temperature Creep and Microstructure Evolution of Alloy 800H Weldments with Inconel 625 and Haynes 230 Filler Materials. Applied Sciences. 2024; 14(4):1347. https://doi.org/10.3390/app14041347
Chicago/Turabian StyleLi, Wenjing, Lin Xiao, Lori Walters, Qingshan Dong, Maurizio Ienzi, and Robyn Sloan. 2024. "High-Temperature Creep and Microstructure Evolution of Alloy 800H Weldments with Inconel 625 and Haynes 230 Filler Materials" Applied Sciences 14, no. 4: 1347. https://doi.org/10.3390/app14041347
APA StyleLi, W., Xiao, L., Walters, L., Dong, Q., Ienzi, M., & Sloan, R. (2024). High-Temperature Creep and Microstructure Evolution of Alloy 800H Weldments with Inconel 625 and Haynes 230 Filler Materials. Applied Sciences, 14(4), 1347. https://doi.org/10.3390/app14041347