Fatigue and Fracture Behavior of Cryogenic Materials Applied to LNG Fuel Storage Tanks for Coastal Ships
Abstract
:1. Introduction
2. Materials and Test Methods
2.1. Materials
2.2. Testing Machine
2.3. Test Scope
2.4. Tensile Test
2.5. Fracture Toughness Test
2.6. Fatigue Test
2.7. Fatigue Crack Growth Rate (FCGR) Test
3. Test Results
3.1. Tensile Test Results
3.2. Fracture Toughness Test Results
3.3. Fatigue Test Results
3.4. FCGR Test Results
4. Conclusions
- In the tensile test results, the effect of temperature was confirmed based on the minimum value of ultimate tensile strength. As the temperatures of the high-Mn steel and 9% Ni steel decreased, the yield strengths increased by 40% and 20%, respectively, and the tensile strengths increased by 51% and 30%, respectively. This indicates that the mechanical properties of both steels are excellent at low temperature. In addition, high-Mn steel and 9% Ni steel both satisfy the mechanical properties recommended by DNV rules in terms of the minimum value of yield strength.
- After performing the CTOD test according to BS 7448, the CTOD values of all weld metals decreased at cryogenic temperatures. This is attributed to the fact that the fracture resistance of the weld metals decreases under the influence of temperature. In addition, all CTOD values of weld metals at room and cryogenic temperature met 0.15 mm, thus satisfying the values recommended by DNV.
- For the fatigue test results, the S-N curve of butt joints with plasma arc welding is observed to satisfy the IIW FAT 80 class. Comparing fatigue strength, that of high-Mn steel was found to be about 5% higher at room temperature; meanwhile, at cryogenic temperature, the fatigue strength of 9% Ni steel was about 20% higher than that of high Mn steel. In addition, the fatigue data of 9% Ni steel at cryogenic temperature showed the highest standard deviation.
- ASTM E647 suggests that data are valid when the angle between the crack generated through the FCGR test and the preliminary fatigue crack is less than 10°. The angles of cracks generated through this test were all less than 10°, and the design curves of high-Mn steel and 9% Ni steel both satisfy the crack growth rate criteria for austenitic steels presented in BS 7910.
- This study was conducted as a preliminary study for the application of automatic plasma arc welding to cryogenic materials in LNG fuel storage tanks for coastal ships. Therefore, this study confirmed the applicability of PAW, and additional studies are planned to improve the stability of the PAW process so that it can be applied in practice in the future.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
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Material | C | Mn | Si | S | P | Ni | Fe |
9% Ni | 0.05 | 0.004 | 0.67 | 0.003 | 0.25 | 9.02 | Bal. |
Material | C | Mn | Si | S | Cr | N | |
High Mn | 0.35–0.55 | 22.0–26.0 | 0.3 | 0.01 | 3.0–3.5 | 0.05 |
Material | Tensile Strength (MPa) | Min. Yield Strength (MPa) | Min. Elongation (%) | Charpy V-Notch Impact | Min. Design Temperature (°C) | |||
---|---|---|---|---|---|---|---|---|
Thickness (mm) | Test Temperature (°C) | Min. Transverse (J) | Min. Longitudinal (J) | |||||
9% Ni | 640–840 | 490 | 19 | t ≤ 40 | −196 | 27 | 41 | −165 |
High Mn | 800–970 | 400 | 22 | t ≤ 40 | −196 | 27 | 41 | −165 |
Welding Process | Voltage (V) | Current (A) | Welding Speed (cm/min) | Shielding Gas |
---|---|---|---|---|
Plasma arc welding | 350 | 27 | 60 | Ar |
Standard Test Methods | Materials | Temperature | No. of Specimen |
---|---|---|---|
Tensile test | 9% Ni | R.T. | 3 |
High Mn | C.T. | 3 | |
Fracture toughness test (CTOD) | 9% Ni | R.T. | 3 |
High Mn | C.T. | 3 | |
Fatigue test | 9% Ni | R.T. | 12 |
High Mn | C.T. | 12 | |
Fatigue crack growth rate (FCGR) test | 9% Ni | R.T. | 3 |
High Mn | C.T. | 3 |
Material | Temp. (K) | ||||||
---|---|---|---|---|---|---|---|
Aver. | S.D. | DNV Requirement | Aver. | S.D. | DNV Requirement | ||
High Mn | RT (298) | 441.0 | 6.5 | 400 | 741.3 | 2.9 | 800 |
CT (110) | 617.0 | 10.3 | - | 1120.4 | 10.3 | - | |
9% Ni | RT (298) | 504.0 | 13.6 | 490 | 710.7 | 11.1 | 640 |
CT (110) | 606.4 | 23.7 | - | 920.4 | 9.0 | - |
High Mn | 9% Ni | ||
---|---|---|---|
RT (298 K) | CT (110 K) | RT (298 K) | CT (110 K) |
0.224 | 0.267 | 0.343 | 0.364 |
Material | Temperature (K) | m | c (m/cycle) |
---|---|---|---|
High Mn | RT (298) | 3.913 | |
CT (110) | 4.848 | ||
9% Ni | RT (298) | 1.838 | |
CT (110) | 3.517 |
Type | Material | Temperature (K) | m | c (m/cycle) |
---|---|---|---|---|
Design curve (Mean + 2 SD) | High Mn | RT (298) | 3 | |
CT (110) | ||||
9% Ni | RT (298) | |||
CT (110) | ||||
BS 7910 | RT (298) |
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Kim, T.-Y.; Yoon, S.-W.; Kim, J.-H.; Kim, M.-H. Fatigue and Fracture Behavior of Cryogenic Materials Applied to LNG Fuel Storage Tanks for Coastal Ships. Metals 2021, 11, 1899. https://doi.org/10.3390/met11121899
Kim T-Y, Yoon S-W, Kim J-H, Kim M-H. Fatigue and Fracture Behavior of Cryogenic Materials Applied to LNG Fuel Storage Tanks for Coastal Ships. Metals. 2021; 11(12):1899. https://doi.org/10.3390/met11121899
Chicago/Turabian StyleKim, Tae-Yeob, Sung-Won Yoon, Ji-Hoon Kim, and Myung-Hyun Kim. 2021. "Fatigue and Fracture Behavior of Cryogenic Materials Applied to LNG Fuel Storage Tanks for Coastal Ships" Metals 11, no. 12: 1899. https://doi.org/10.3390/met11121899
APA StyleKim, T. -Y., Yoon, S. -W., Kim, J. -H., & Kim, M. -H. (2021). Fatigue and Fracture Behavior of Cryogenic Materials Applied to LNG Fuel Storage Tanks for Coastal Ships. Metals, 11(12), 1899. https://doi.org/10.3390/met11121899