A Study on Welding Characteristics, Mechanical Properties, and Penetration Depth of T-Joint Thin-Walled Parts for Different TIG Welding Currents: FE Simulation and Experimental Analysis
Abstract
:1. Introduction
2. Materials and Their Property Parameters
3. Welding Characteristics Analysis with FE Simulation
Simulation Results Analysis
4. Experimental Procedure
5. Results and Discussion
5.1. Tensile Properties of T-Welded Joint
5.2. Metallography
5.3. Welding Defects and Microstructure
5.4. Microhardness Measurements
6. Conclusions
- (1)
- The larger the welding current, the greater the warpage deformation for T-joint thin-walled parts, which is affected by the welding temperature field during the welding process to a great extent. However, the residual stress under the largest welding current was the smallest, compared to the other smaller welding currents. Therefore, the effect of the welding current or heat input on welding characteristics is relatively greater. Under these conditions, it is important to obtain a good T-welded joint for choosing a reasonable welding process parameter in the future.
- (2)
- Considering the effect of the welding heat input on tensile properties, the yield strength and tensile strength of the T-welded joint increased with the increment of the welding current to some extent. For welding currents of 100, 170, and 220 A, the mean yield strength of the T-welded joint respectively accounted for about 31.6%, 34.9%, and 36.2% of BM strength, and the mean tensile strength respectively accounted for 68.6%, 71.5%, and 70.1% of BM strength. From this perspective, the yield and tensile strength decreased in both specimens of the T-welded joint. In particular, the yield strength of the T-welded joint significantly decreased. Meanwhile, due to the existence of incomplete root penetration and the porosity defect of the T-welded joint, the yield and tensile strength were lower than those of BM to a certain degree. The produced welding defect under different welding currents profoundly affected the tensile properties of the welded joint.
- (3)
- The maximum penetration depth reached about 1.28, 1.81, and 2.18 mm, which respectively occurred at welding currents of 100, 170, and 220 A. That is, when the welding current or heat input increased, the penetration depth of the T-welded joint deepened, due to the melted volume of the welded joint materials caused by the increment of the welding heat input energy. Therefore, the penetration depth of the welded joint depends on the variation of the welding current. Correspondingly, the yield strength, tensile strength, and hardness value of the T-welded joint were nevertheless decreased overall.
- (4)
- These welding process parameters, not just the welding current, including welding velocity, welding voltage, and other influence factors involving welding sequence, welding direction, heat source parameters, etc., should be comprehensively considered and optimized to obtain a reasonable weld penetration and tensile properties to satisfy the service requirements of thin-walled parts. Additionally, further works will also be concentrated on the response relationship among mechanical properties, penetration variation, and microstructure variation from a quantitative perspective, which will promote the mechanical properties of the T-welded joint and provide a theoretical basis for the actual welding process of thin-walled parts in the future.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Element (%) | Si | Mg | Fe | Cu | Mn | Zn | Ti | Cr | Al |
---|---|---|---|---|---|---|---|---|---|
Al6061-T6 | 0.40–0.80 | 0.80–1.20 | ≤0.70 | 0.15–0.40 | ≤0.15 | ≤0.25 | ≤0.15 | 0.04–0.35 | Bal. |
ER4043 | 4.5–6.0 | ≤0.05 | ≤0.80 | ≤0.03 | ≤0.05 | ≤0.10 | ≤0.20 | ― | Bal. |
Welding Current | Samples | Yield Strength (MPa) (0.2% Offset Method) | Tensile Strength (MPa) | Percentage of Yield Strength | Percentage of Tensile Strength |
---|---|---|---|---|---|
100 A | A-1 | 82.6 | 210.7 | 29.9% | 67.8% |
A-2 | 91.9 | 215.2 | 33.3% | 69.4% | |
170 A | B-1 | 97.9 | 226.7 | 35.5% | 73.1% |
B-2 | 94.6 | 216.5 | 34.3% | 69.8% | |
220 A | C-1 | 100.9 | 218.4 | 36.6% | 70.5% |
C-2 | 98.6 | 215.9 | 35.7% | 69.6% | |
BM | Al6061-T6 | 276 | 310 | ― | ― |
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Pan, M.; Li, Y.; Sun, S.; Liao, W.; Xing, Y.; Tang, W. A Study on Welding Characteristics, Mechanical Properties, and Penetration Depth of T-Joint Thin-Walled Parts for Different TIG Welding Currents: FE Simulation and Experimental Analysis. Metals 2022, 12, 1157. https://doi.org/10.3390/met12071157
Pan M, Li Y, Sun S, Liao W, Xing Y, Tang W. A Study on Welding Characteristics, Mechanical Properties, and Penetration Depth of T-Joint Thin-Walled Parts for Different TIG Welding Currents: FE Simulation and Experimental Analysis. Metals. 2022; 12(7):1157. https://doi.org/10.3390/met12071157
Chicago/Turabian StylePan, Minghui, Yuchao Li, Siyuan Sun, Wenhe Liao, Yan Xing, and Wencheng Tang. 2022. "A Study on Welding Characteristics, Mechanical Properties, and Penetration Depth of T-Joint Thin-Walled Parts for Different TIG Welding Currents: FE Simulation and Experimental Analysis" Metals 12, no. 7: 1157. https://doi.org/10.3390/met12071157