Analysis of the Low Cycle Fatigue Behavior of DP980 Steel Gas Metal Arc Welded Joints
Abstract
:1. Introduction
2. Materials and Methods
2.1. Base Material and Welded Joints
2.2. Experimental Tests
3. Results and Discussion
3.1. Base Material and Welded Joints
3.2. Mechanical Properties
3.3. Low Cycle Fatigue Tests
3.4. Fractographic Analysis
4. Conclusions
- Dual phase sheet steel of 1.6 mm-thick with a nominal tensile strength of 980 MPa were properly welded by the GMAW process using a heat input of 302 J·mm−1. The welded joints exhibited full penetration and not discontinuities were presented;
- The dual martensite-ferrite phases were extensively modified by the GMAW process, presenting a martensite content increment of 54% in the HT-HAZ and 60% in the LT-HAZ. A region of tempered martensite in the LT-HAZ produced a ductility reduction of 75% with respect to the DP980 steel sheet (base metal). Also, the hardness value was reduced by ~20%, and the tensile fracture was presented in this tempered martensite region. This tempering process of the martensite in the LT-HAZ was verified by metallography analysis and welded thermal cycles that showed that pre-existing martensite had not enough time to transform into new ferrite;
- Regarding the low cycle fatigue behavior, the strain-cycle data showed a reduced fatigue life for the welded joint compared to the dual-phase steel due to larger plastic strain amplitudes induced in the welded joint. For larger strain amplitudes (εa ≥ 0.6%), a softening behavior was observed in the welded joint during the LCF tests in terms of the variable stress amplitude as a function of the number of cycles to failure;
- On average, the fatigue life of the welded joint was reduced by 39% at strain amplitude εa ≥ 0.6%. For the remaining strain amplitudes (0.2, 0.3, and 0.4%), the welded joint exhibited a mixed behavior (hardening followed by softening), and only for the strain amplitude of 0.2%, the welded joint presented cyclic stress-strain stable behavior. The fatigue life of the welded joint was reduced by 16% for the strain amplitudes of 0.2, 0.3, and 0.4%.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Ac1 | Reference line for the beginning of Ferrite-Austenite transformation in Iron-Carbon diagram | |
Ac3 | Reference line for the beginning Austenitic transformation in Iron-Carbon diagram | |
AHSS | Advanced High Strength Steels | |
Ar | Argon gas | |
ASTM | American Society of Testing and Materials | |
BM | Base Metal | |
DP | Dual-phase | |
FZ | Fusion Zone | |
GMAW | Gas Metal Arc Welding | |
HAZ | Heat Affected Zone | |
HNO3 | Nitrogen oxoacid | |
HT-HAZ | High-Temperature Heat Affected Zone | |
HV0.5 | Hardness Vickers Number in the 0.5 scale | |
ISO | International Organization for Standardization | |
L | Longitudinal direction in steel sheet | |
LCF | Low Cycle Fatigue | |
LT | Transverse direction in steel sheet | |
LT-HAZ | Low-Temperature Heat Affected Zone | |
O2 | Oxygen gas | |
Q | Heat input | |
RSW | Resistance Spot Welding | |
SEM | Scanning Electron Microscope | |
SEI | Secondary Electron Image | |
SiC | Silicon Carbide | |
ST | Short transverse direction in steel sheet | |
Symbols | Description | Units |
b | Fatigue strength exponent | Dimensionless |
c | Fatigue ductility exponent | Dimensionless |
E | Young’s Elastic Modulus | GPa |
Ec | Cyclic Elastic Modulus | GPa |
ε | Engineering Strain | mm/mm |
εa | Total Strain Amplitude | mm/mm |
εea | Elastic Strain Amplitude | mm/mm |
εpa | Plastic Strain Amplitude | mm/mm |
ε′f | Fatigue Ductility Coefficient | Dimensionless |
εmax | Elongation after fracture | Dimensionless |
Strain rate | s−1 | |
True Strain | Dimensionless | |
f | Fatigue test frequency | Hertz |
η | Efficiency of the welding process | Dimensionless |
I | Current | Amperes |
J | Energy applied | Joules |
K | Strength Coefficient | MPa |
K′ | Cyclic Strain Coefficient | MPa |
KeV | Acceleration voltage | Kiloelectronvolts |
µm | Dimensions for scale in micrographs | Micrometers |
n | Strain Hardening Exponent | Dimensionless |
n’ | Cyclic Strain Hardening Exponent | Dimensionless |
N | Magnitude of force | Newton |
2Nf | Reversals to Failure | Dimensionless |
ν | Speed of heat source | mm·s−1 |
σ | Engineering Stress | MPa |
True Stress | MPa | |
σ0.2% | Offset Yield Strength | MPa |
σa | Stress Amplitude | MPa |
σ’f | Fatigue Strength Coefficient | MPa |
σu | Ultimate Tensile Strength | MPa |
σy’ | Offset Cyclic Yield Strength | MPa |
R | Fatigue ratio | Dimensionless |
V | Voltage | Volts |
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Material | C | Mn | Si | P | S | Cr | Ni | Mo | Al | Cu | Ti | Zr | Fe |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
DP980 * | 0.130 | 2.260 | 0.420 | 0.012 | 0.009 | 0.950 | 0.021 | 0.110 | - | - | - | - | 96.087 |
Spoolarc 120 ** | 0.070 | 1.690 | 0.350 | 0.004 | 0.004 | 0.270 | 2.490 | 0.510 | 0.005 | 0.030 | 0.018 | 0.002 | 94.557 |
Strain Amplitude, εa (%) | Test Frequency, f (Hz) | Tested Samples | |
---|---|---|---|
DP980 Steel Sheet | Welded Joints | ||
0.2 | 2 | 1 | 3 |
0.3 | 1.333 | 2 | 2 |
0.4 | 1 | 3 | 1 |
0.6 | 0.667 | 2 | 3 |
0.8 | 0.5 | 2 | 1 |
Material | σ0.2% (MPa) | σu (MPa) | E (GPa) | εmax (%) | K (MPa) | n | Joint Efficiency (%) |
---|---|---|---|---|---|---|---|
DP980 | 699 | 1012 | 202 | 15 | 1389 | 0.0905 | - |
Welded joints | 647 | 906 | 209 | 3.8 | 1388 | 0.113 | 89 |
Material | E (GPa) | σy′ (MPa) | K′ | n′ |
---|---|---|---|---|
DP980 | 234 | 490 | 2325 | 0.20 |
Welded joints | 242 | 438 | 2064 | 0.18 |
Material | σ’f | b | ε’f | C |
---|---|---|---|---|
DP980 | 1724 | −0.102 | 3.388 | −0.810 |
Welded joints | 2649 | −0.171 | 2.617 | −0.905 |
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Rosado-Carrasco, J.G.; González-Zapatero, W.F.; García, C.J.; Gómora, C.M.; Jaramillo, D.; Ambriz, R.R. Analysis of the Low Cycle Fatigue Behavior of DP980 Steel Gas Metal Arc Welded Joints. Metals 2022, 12, 419. https://doi.org/10.3390/met12030419
Rosado-Carrasco JG, González-Zapatero WF, García CJ, Gómora CM, Jaramillo D, Ambriz RR. Analysis of the Low Cycle Fatigue Behavior of DP980 Steel Gas Metal Arc Welded Joints. Metals. 2022; 12(3):419. https://doi.org/10.3390/met12030419
Chicago/Turabian StyleRosado-Carrasco, Juliana G., Walter F. González-Zapatero, Christian J. García, César M. Gómora, David Jaramillo, and Ricardo R. Ambriz. 2022. "Analysis of the Low Cycle Fatigue Behavior of DP980 Steel Gas Metal Arc Welded Joints" Metals 12, no. 3: 419. https://doi.org/10.3390/met12030419
APA StyleRosado-Carrasco, J. G., González-Zapatero, W. F., García, C. J., Gómora, C. M., Jaramillo, D., & Ambriz, R. R. (2022). Analysis of the Low Cycle Fatigue Behavior of DP980 Steel Gas Metal Arc Welded Joints. Metals, 12(3), 419. https://doi.org/10.3390/met12030419