The Pre-Heating Effect for Porosity Control during the Laser Welding of Galvanized Steel Sheets
Abstract
:1. Introduction
2. Experimental Method
2.1. Material and Welding Method
2.2. Welding Process and Conditions
2.3. Evaluation Method of Weld Characteristics
3. Results and Discussion
3.1. Bead Characteristics
3.2. Tensile–Shear Load
3.3. Hardness Profiles
3.4. SEM-EDS Analysis
3.5. Radiographic Testing
4. Conclusions
- The maximum tensile–shear strength value of 10.2 kN was obtained under the conditions of a laser power of 2.8 kW and a focal position of 20 mm in the three-step laser welding process. As a result, the tensile–shear strength value increased by about 37% compared to conventional laser welding. These results are due to the mitigation of pores in the welds by the introduction of the pre-heating step.
- As a result of radiographic testing and SEM-EDS analysis, the three-step laser welding process effectively avoids the generation rate of internal pores due to the first and second steps of removing the galvanized layer in advance. These results indicate that zinc was not detected in welds without pores.
- The result of the hardness profile analysis showed slightly higher at about 11 HV in the upper sheet and 27 HV in the lower sheet during three-step laser welding compared to conventional laser welding. However, it does not affect the weld quality.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Chemical Composition (wt%) | |||||
---|---|---|---|---|---|
C | Si | Mn | P | Ti | S-AL |
0.001 | 0.048 | 0.005 | 0.01 | 0.43 | 0.033 |
Mechanical Properties | |||||
Tensile Strength (MPa) | Yield Strength (MPa) | Elongation (%) | |||
359 | 198 | 39% |
Welding Condition | Step | ||
---|---|---|---|
1 | 2 | 3 | |
Laser power, LP (kW) | 1.6 | 0.8 | 2.0, 2.4, 2.8 |
Focal position, FP (mm) | 20, 25, 30 | 20, 25, 30 | 20, 25, 30 |
Welding speed (mm/s) | 30 | 60 | 35 |
Bead length (mm) | 20 | ||
Shielding gas (L/min) | 10 | ||
Focal length (mm) | 265 | ||
Pitch (mm) | 40 |
LP (kW) | FP (mm) | Front Bead | Back Bead | Cross Section |
---|---|---|---|---|
2 | 20 | |||
2 | 25 | |||
2 | 30 | Unweld | ||
2.4 | 20 | |||
2.4 | 25 | |||
2.4 | 30 | |||
2.8 | 20 | |||
2.8 | 25 | |||
2.8 | 30 |
Welding Condition | Radiographic Testing |
---|---|
LP (kW): 2.4 FP (mm): 20 |
Welding Condition | Radiographic Testing |
---|---|
LP (kW): 2.4 FP (mm): 20 | |
LP (kW): 2.4 FP (mm): 25 | |
LP (kW): 2.4 FP (mm): 30 |
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Share and Cite
Bang, H.-S.; Kim, J.-C.; Go, B.-S.; Choi, D.-W.; Kim, H.-S. The Pre-Heating Effect for Porosity Control during the Laser Welding of Galvanized Steel Sheets. Appl. Sci. 2024, 14, 2987. https://doi.org/10.3390/app14072987
Bang H-S, Kim J-C, Go B-S, Choi D-W, Kim H-S. The Pre-Heating Effect for Porosity Control during the Laser Welding of Galvanized Steel Sheets. Applied Sciences. 2024; 14(7):2987. https://doi.org/10.3390/app14072987
Chicago/Turabian StyleBang, Hee-Seon, Jong-Chan Kim, Bum-Su Go, Dong-Won Choi, and Hyo-Sung Kim. 2024. "The Pre-Heating Effect for Porosity Control during the Laser Welding of Galvanized Steel Sheets" Applied Sciences 14, no. 7: 2987. https://doi.org/10.3390/app14072987
APA StyleBang, H.-S., Kim, J.-C., Go, B.-S., Choi, D.-W., & Kim, H.-S. (2024). The Pre-Heating Effect for Porosity Control during the Laser Welding of Galvanized Steel Sheets. Applied Sciences, 14(7), 2987. https://doi.org/10.3390/app14072987