A Fatigue Life Prediction Model Based on Modified Resolved Shear Stress for Nickel-Based Single Crystal Superalloys
Abstract
:1. Introduction
2. Methods
2.1. Elastic Stress and Strain Calculation of Nickel-Based Single Crystal
2.2. Nickel-Based Single Crystal Resolved Shear Stress and Resolved Shear Strain
2.3. Nickel-Based Single Crystal Fatigue Life Prediction Model
2.4. Modified Life Prediction Model
3. Results
3.1. High Cycle Fatigue Life Prediction for DD6 Material
3.2. Low Cycle Fatigue Life Prediction for PWA1480 Material
3.3. Fatigue Life Prediction of PWA1484 Material
4. Discussion
5. Conclusions
- For the high cyclic fatigue experiments for DD6 material at 700 °C and 800 °C with a stress ratio of −1 and the low cyclic fatigue experiments for PWA1480 material at different strain ratios at 648 °C, several classical nickel-based single crystal fatigue life prediction models were compared. The fatigue life prediction model with stress amplitude as the damage parameter, the fatigue life prediction model considering maximum resolved shear stress of the 30 slip directions as the damage parameter, the McD model, and the modified maximum resolved shear stress amplitude fatigue life prediction proposed in this paper were observed to have higher accuracy.
- For fatigue data obtained for PWA1484 material at 593 °C with a stress ratio of −1, the fatigue life prediction model proposed in this paper and the model considering maximum resolved shear stress of the primary octahedral slip system as the damage parameter had better prediction results. At lower temperatures, the model considering maximum resolved shear stress of the primary octahedral slip system as the damage parameter has greater engineering application prospects.
- Fatigue life prediction models with strain as the damage parameter have poor prediction accuracy.
- By comparing the aforementioned nickel-based single crystal fatigue life prediction models, for nickel-based single crystals at higher temperature, the proposed method and the fatigue life model with stress amplitude directly as the damage parameter have higher prediction accuracy and hence greater engineering application value.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
a | Fatigue strength coefficient |
b | Fatigue strength exponent |
A, B | Transformation matrix |
C | Flexibility matrix |
D | Elasticity matrix |
E | Young’s modulus |
G | Shear modulus |
li, mi, ni | Cosines of the angle between the material coordinate system and the calculation coordinate system |
lj | Firection cosines between the old and new coordinate systems |
m(a) | Sliding direction of the αth slip system |
n(a) | Normal direction of the plane of the αth slip system |
M1 | Maximum value of the Schmid factor |
M2 | Median value of the Schmid factor |
Nf | Number of cycles to failure |
ε | Strain tensor |
Δεs,oct_prim | Maximum resolved shear strain range (the primary octahedral slip system) |
Δεn | Normal strain corresponding to the resolved shear strain |
Δεs | Maximum resolved shear strain range |
υ | Poisson’s ratio |
σ | Stress tensor |
σmax | Maximum normal stress |
τmax | Maximum shear stress |
Δτmax | Maximum shear stress range |
Δτ | Maximum resolved shear stress range |
τ(a) | Resolved shear stress of the αth slip system |
Δτs,oct_prim | Maximum resolved shear stress range (the primary octahedral slip system) |
Δτoct_sec | Maximum resolved shear stress range (the secondary octahedral slip system) |
Δτcub | Maximum resolved shear stress range (the cubic octahedral slip system) |
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Direction Cosines | Material CSYS | ||
---|---|---|---|
x | y | z | |
x’ | l1 | m1 | n1 |
y’ | l2 | m2 | n2 |
z’ | l3 | m3 | n3 |
Direction Cosines | x | y | z |
---|---|---|---|
x’ | l11 | l12 | l13 |
y’ | l21 | l22 | l23 |
z’ | l31 | l32 | l33 |
(1) Maximum resolved shear stress amplitude | |
(2) Maximum resolved shear stress amplitude (primary octahedral slip system) | |
(3) Maximum resolved shear strain amplitude | |
(4) Maximum resolved shear strain amplitude (primary octahedral slip system) | |
(5) Maximum shear stress range | |
(6) Chu-Conle-Bonnen (CCB) model | |
(7) Findley (Fin) model | |
(8) McDiarmid (McD) model |
Material Properties | DD6 (700 °C) | DD6 (800 °C) | PWA1480 (648 °C) | PWA1484 (593 °C) |
---|---|---|---|---|
E/GPa | 107.0 | 102.2 | 106.2 | 108.2 |
G/GPa | 100.2 | 85.3 | 108.3 | 109.8 |
ν | 0.3740 | 0.3797 | 0.4009 | 0.3995 |
(1) | With maximum resolved shear stress amplitude of the 30 slip systems as the damage parameter, all of the fatigue life prediction results are good. |
(2) | With maximum resolved shear stress amplitude of the primary octahedral slip system as the damage parameter, all of the fatigue life prediction results are worse. |
(3) , (4) | Models with resolved shear strain amplitude as the damage parameter generally have poor prediction results for nickel-based single crystal materials. |
(5) | The fatigue life prediction model with stress amplitude or maximum shear stress as the damage parameter has a higher life prediction accuracy. |
(6) CCB | Life prediction results obtained by using the CCB model for PWA1480 low cycle fatigue data are better, while the life prediction results of the CCB model for DD6 high cycle fatigue data are worse. |
(7) Fin | Life prediction results for DD6 high cycle fatigue data obtained using the Fin model are better, while those for PWA1480 low cycle fatigue data obtained using the Fin model are worse. |
(8) McD | The McD model has a higher life prediction accuracy. |
(9) | The nickel-based single crystal fatigue life prediction model based on modified resolved shear stress amplitude, which has been proposed in this paper, has higher life prediction accuracy. |
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Wang, J.; Wei, D.; Wang, Y.; Jiang, X. A Fatigue Life Prediction Model Based on Modified Resolved Shear Stress for Nickel-Based Single Crystal Superalloys. Metals 2019, 9, 180. https://doi.org/10.3390/met9020180
Wang J, Wei D, Wang Y, Jiang X. A Fatigue Life Prediction Model Based on Modified Resolved Shear Stress for Nickel-Based Single Crystal Superalloys. Metals. 2019; 9(2):180. https://doi.org/10.3390/met9020180
Chicago/Turabian StyleWang, Jialiang, Dasheng Wei, Yanrong Wang, and Xianghua Jiang. 2019. "A Fatigue Life Prediction Model Based on Modified Resolved Shear Stress for Nickel-Based Single Crystal Superalloys" Metals 9, no. 2: 180. https://doi.org/10.3390/met9020180
APA StyleWang, J., Wei, D., Wang, Y., & Jiang, X. (2019). A Fatigue Life Prediction Model Based on Modified Resolved Shear Stress for Nickel-Based Single Crystal Superalloys. Metals, 9(2), 180. https://doi.org/10.3390/met9020180