Effect of Nickel Contents on Fatigue Crack Growth Rate and Fracture Toughness for Nickel Alloy Steels
Abstract
:1. Introduction
1.1. Prior Work of Fatigue and Fracture Performances for Nickel Alloy Steels
1.2. Fatigue Ductile to Brittle Transition (FDBT) Temperature
1.3. Fracture Toughness ( and CTOD)
1.4. Scope and Aim of This Paper
2. Materials and Methods
2.1. Materials
2.2. Test Condition
3. Results
3.1. Fracture Performance (CTOD)
3.2. Fatigue Performance (FCGR)
4. Discussion
4.1. Microstructure Analysis
4.2. FDBT Temperatures for Nickel Alloy Steels
5. Conclusions
- The critical CTOD values of nickel alloy steels increase as nickel contents increase. It is well known that nickel contribute to stabilization for austenite, and the critical CTOD value increase as amount of retained austenite increase. Therefore, the critical CTOD value is influenced by nickel contents.
- The FCGR of nickel alloy steels increase while nickel content increase. In cases of the low nickel content in the nickel alloy steel, the factor m, the slope of the FCGR, increases further with decreasing temperature in comparison with the high nickel content of the nickel alloy steel. In addition, the factor m increases as nickel contents decrease at the same temperature. The material constants from FCGR are observed to locate within a single line except some data.
- The dimple size of 3.5Ni is smaller than that of 9Ni. In addition, the dimple size after the critical CTOD test at cryogenic temperature is smaller than that at room temperature. Therefore, the tendency of fracture toughness by nickel contents is reasonable according to analysis of dimple size. In case of fatigue striation, 3.5Ni is narrower than 9Ni. It is expected that FCGR of 9Ni is fast compared to 3.5Ni based on the fatigue striation spacing. Therefore, FCGR of nickel alloy steels obtained from this study are reasonable according to existing paper and microstructure analysis.
- Based on FDBT temperature by the relationship of the critical CTOD-m, no brittle failure exists in the fatigue and fracture performances of the nickel alloy steels at the actual operating temperature. The FDBT temperature by the critical CTOD and decreases as amount of nickel contents increase. In addition, the FDBT temperatures by are lower than thoes by the critical CTOD. The different criterion for fracture toughness parameters lead to this discrepancy. For high toughness materials, it can be inferred that , a fracture toughness parameter based on elastic fracture mechanics, does not accurately reflect the plastic deformation at the crack tip and strain hardening effect.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Minimum Design Temperature (K) | Chemical Composition | Application |
---|---|---|
213 | 1.5% nickel alloy steel | Propane Gas |
208 | 2.25% nickel alloy steel | |
183 | 3.5% nickel alloy steel | Ethane Gas |
168 | 5% nickel alloy steel | |
108 | 9% nickel alloy steel | Natural Gas |
Material | Naming | C | Mn | Si | P | S | Ni | Cr | Mo |
---|---|---|---|---|---|---|---|---|---|
3.5% Ni | 3.5Ni | 0.06 | 0.54 | 0.17 | 0.005 | - | 3.58 | - | - |
5% Ni | 5Ni | 0.08 | 0.06 | 0.25 | 0.010 | 0.009 | 5.03 | - | 0.30 |
7% Ni | 7Ni | 0.04 | 0.78 | 0.06 | 0.002 | 0.004 | 7.13 | 0.46 | 0.09 |
9% Ni | 9Ni | 0.10 | 0.3–0.9 | 0.35 | 0.035 | 0.020 | 8.5–10 | 0.25 | 0.10 |
Material | (MPa) | (MPa) |
---|---|---|
3.5Ni | 487.3 | 616.8 |
5Ni | 507.0 | 678.0 |
7Ni | 612.0 | 701.0 |
9Ni | 670.7 | 724.9 |
Material | C (m/cycle) | m |
---|---|---|
3.5Ni | 3 | |
5Ni | ||
7Ni | ||
9Ni | ||
BS 7910 |
Material | Prior Austenite Grain Diameter (μm) |
---|---|
3.5Ni | 33.3 |
9Ni | 98.3 |
Material | FDBT Temperature Based on | FDBT Temperature Based on the Critical CTOD |
---|---|---|
3.5Ni | 151 K | 160 K |
7Ni | - | 110 K |
9Ni | 90 K | 104 K |
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Park, J.Y.; Kim, B.K.; Nam, D.G.; Kim, M.H. Effect of Nickel Contents on Fatigue Crack Growth Rate and Fracture Toughness for Nickel Alloy Steels. Metals 2022, 12, 173. https://doi.org/10.3390/met12020173
Park JY, Kim BK, Nam DG, Kim MH. Effect of Nickel Contents on Fatigue Crack Growth Rate and Fracture Toughness for Nickel Alloy Steels. Metals. 2022; 12(2):173. https://doi.org/10.3390/met12020173
Chicago/Turabian StylePark, Jeong Yeol, Byoung Koo Kim, Dae Geun Nam, and Myung Hyun Kim. 2022. "Effect of Nickel Contents on Fatigue Crack Growth Rate and Fracture Toughness for Nickel Alloy Steels" Metals 12, no. 2: 173. https://doi.org/10.3390/met12020173
APA StylePark, J. Y., Kim, B. K., Nam, D. G., & Kim, M. H. (2022). Effect of Nickel Contents on Fatigue Crack Growth Rate and Fracture Toughness for Nickel Alloy Steels. Metals, 12(2), 173. https://doi.org/10.3390/met12020173