Microstructure and High-Temperature Mechanical Properties of a Superalloy Joint Deposited with CoCrMo and CoCrW Welding Wires
Abstract
:1. Introduction
2. Test Materials and Methods
3. Results and Discussion
3.1. Microstructure of CoCrMo and CoCrW
3.1.1. CoCrMo Welding Wire
3.1.2. CoCrW Welding Wire
3.2. Microstructure of Overlay Welding on the DD6
3.2.1. CoCrMo Overlay Welding
3.2.2. CoCrW Overlay Welding
3.3. Mechanical Properties of DD6 Overlay Welded Joints
3.3.1. High-Temperature Tensile Performance of Overlay Welded Joints
3.3.2. High-Temperature Compression Performance of Overlay Welded Joints
3.3.3. Fatigue Performance of Overlay Welded Joints
3.3.4. High-Temperature Fatigue and Wear Performance of Overlay Welded Joints
4. Conclusions
- (1)
- The average room temperature tensile strength of CoCrMo welded specimens was 832 MPa, which was lower than CoCrW welded specimens. The average high-temperature tensile strength of CoCrMo welded specimens at 900 °C was 290 MPa, which was smaller than that of CoCrW welded specimens;
- (2)
- At 900 °C and 150 MPa, the duration of CoCrMo welded specimens was 1.17 h, which was lower than that of CoCrW welded specimens. At 900 °C and 200 MPa, the duration of CoCrMo welded specimens was lower than that of CoCrW welded specimens by 2 h;
- (3)
- The fatigue life of CoCrMo welded specimens at 900 °C and 220 MPa was lower than the fatigue life of CoCrW welded specimens at 9.432 × 105. The average high-temperature wear rate of CoCrMo specimens was higher than that of CoCrW specimens, indicating that CoCrW was more wear resistant than CoCrMo at 900 °C.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Alloy Type | Main Categories | Main Characteristics | Application |
---|---|---|---|
Fe-based alloy | Austenitic stainless steel; High chromium cast iron | Low cost, but poor oxidation resistance and poor self melting of the alloy. | Situations where the requirements are not strict. |
Ni-based alloy | Ni-B-Si series; Ni-Cr-B-Si series | High wear resistance, good high-temperature stability, corrosion resistance, and high toughness, poor impact resistance, and high-temperature performance is not as good as Co-based alloy powder. | Widely used and commonly used for surface welding in severely corrosive medias. |
Co-based alloy | Co-based wear-resistant alloy; Co-based high-temperature-resistant alloy; Co-based corrosion-resistant alloy | The high-temperature resistance is the best, the comprehensive performance of all kinds of surfacing alloys is the best, with high hardness, and wear resistance, impact resistance, corrosion resistance, and oxidation resistance are good, but the price is expensive. | Suitable for working at a high temperature of 600~700 °C, with oxidation resistance, corrosion resistance, and wear-resistant surfaces. |
C | Si | Cr | Mo | W | Fe | Ni | Co | |
---|---|---|---|---|---|---|---|---|
CoCrMo | 0.08 | 3.0~3.8 | 16.5~18.5 | 27.0~30.0 | Bal. | |||
CoCrW | 0.9~1.4 | ≤2.0 | 26.0~32.0 | ≤1.0 | 3.0~6.0 | ≤3.0 | ≤3.0 | Bal. |
Si | Mo | Cr | Fe | Co | |
---|---|---|---|---|---|
Point 1 | 2.71 | 13.65 | 22.96 | 1.45 | 59.23 |
Point 2 | 4.9 | 33.97 | 15.89 | 1.08 | 44.16 |
Point 3 | 4.82 | 34.38 | 16.12 | 1.06 | 43.62 |
Point 4 | 2.02 | 11.79 | 24.45 | 1.62 | 60.12 |
Cr | Fe | Co | Ni | W | |
---|---|---|---|---|---|
Point 1 | 66.15 | 1.67 | 27.78 | 1.3 | 3.11 |
Point 2 | 25.41 | 2.69 | 65.14 | 2.58 | 4.19 |
Point 3 | 44.92 | 1.65 | 51.12 | 1.33 | 0.98 |
Point 4 | 25.79 | 2.81 | 64.75 | 2.56 | 4.09 |
Al | Si | Nb | Mo | Cr | Fe | Co | Ni | W | |
---|---|---|---|---|---|---|---|---|---|
Point 1 | 3.39 | 1.91 | 0.12 | 9.85 | 13.43 | 0.88 | 33.2 | 33.25 | 3.97 |
Point 2 | 2.71 | 4.37 | 0.39 | 14.55 | 12.43 | 0.76 | 30.12 | 29.27 | 5.4 |
Stress/MPa | Cycle Times | |
---|---|---|
CoCrMo | 220 | 7.186 × 105 |
CoCrW | 9.432 × 105 | |
CoCrMo | 180 | 3.279 × 106 |
CoCrW | 1.46 × 106 | |
CoCrMo | 150 | >1 × 107 |
CoCrW | >1 × 107 |
Frictional Factor | Wear Volume (mm3) | Wear Rate (mm3N−1m−1) | |
---|---|---|---|
DD6 | 0.522 ± 0.09 | 9.85 ± 2.49 × 10−3 | 5.47 ± 1.38 × 10−6 |
CoCrMo | 0.376 ± 0.07 | 6.55 ± 2.35 × 10−3 | 3.64 ± 1.31 × 10−6 |
CoCrW | 0.397 ± 0.05 | 2.89 ± 0.71 × 10−3 | 2.83 ± 1.58 × 10−6 |
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Huang, S.; Wang, T.; Miao, J.; Chen, X.; Zhang, G.; Chen, B.; Zhou, B. Microstructure and High-Temperature Mechanical Properties of a Superalloy Joint Deposited with CoCrMo and CoCrW Welding Wires. Coatings 2024, 14, 892. https://doi.org/10.3390/coatings14070892
Huang S, Wang T, Miao J, Chen X, Zhang G, Chen B, Zhou B. Microstructure and High-Temperature Mechanical Properties of a Superalloy Joint Deposited with CoCrMo and CoCrW Welding Wires. Coatings. 2024; 14(7):892. https://doi.org/10.3390/coatings14070892
Chicago/Turabian StyleHuang, Shuai, Tianyuan Wang, Jian Miao, Xing Chen, Guohui Zhang, Bingqing Chen, and Biao Zhou. 2024. "Microstructure and High-Temperature Mechanical Properties of a Superalloy Joint Deposited with CoCrMo and CoCrW Welding Wires" Coatings 14, no. 7: 892. https://doi.org/10.3390/coatings14070892
APA StyleHuang, S., Wang, T., Miao, J., Chen, X., Zhang, G., Chen, B., & Zhou, B. (2024). Microstructure and High-Temperature Mechanical Properties of a Superalloy Joint Deposited with CoCrMo and CoCrW Welding Wires. Coatings, 14(7), 892. https://doi.org/10.3390/coatings14070892