Effect of Double Pulse Resistance Spot Welding Process on 15B22 Hot Stamped Boron Steel
Abstract
:1. Introduction
2. Materials and Methods
3. Results and Discussion
3.1. Nugget Diameter
3.2. Mechanical Properties
3.3. Hardness Measurement
3.4. Microstructure
3.5. Failure Mode
4. Conclusions
- When the two-step RSW is applied, the additional heat input would increase the size of the weld nugget; however, it would also increase the degree of the softening effect in some certain areas, namely PMZ and SCHAZ. Sudden hardness drop caused by microstructural change results softening effect which lowered the tensile–shear strength in tensile shear test.
- For 15B22, mechanical properties of the two-step RSW with current of 5.5 and 6.0 kA is worse than that of the one-step RSW. Microstructure investigation reveals that softening of PMZ is due to the formation of larger amounts of soft ferrite in rapid solidification process, and the softening of SCHAZ is due to the tempering martensite formed at high tempering temperature near Ac1. Moreover, the hardness drop in SCHAZ is severer than in PMZ. Compared to an average hardness of HV400 in BM and HV500–550 in FZ of the weldment by 15B22, the hardness in SCHAZ can drop to a low level of HV300. Consequently, it leads to an unexpected earlier fracture due to the insufficient hardness and strength as well.
- Heat input is the main factor dominating the fracture mode in the two-step RSW process. At the weld current of 5.5 kA, the weldment would fail in the PMZ and show the PT-PP. For higher welding current, increased heat input causes the failure mode to transit from IF to PF, which is attributed to softening of SCHAZ.
- The implement of a multi-step RSW process for a high strength steel is becoming more common in practical automotive technologies; however, for 15B22, if high current is employed in RSW process, severe softening in SCHAZ caused by the large amount of heat input should be pay attention to since it will lead to the earlier failure in case of the tensile shear loading.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Element | C | Si | Mn | P | S | Al | B | Fe |
---|---|---|---|---|---|---|---|---|
wt% | 0.22 | 0.20 | 1.20 | <0.020 | <0.010 | <0.075 | 0.0017 | Bal. |
One-Step Process | ||
---|---|---|
F | Weld force, kgf | 400 |
h1 | Squeeze time, ms | 1000 |
t | Weld time, ms | 250 |
h2 | Holding time, ms | 200 |
i | Weld current, kA | 5.0, 5.5, 6.0 |
Two-Step Process | ||
F | Weld force, kgf | 400 |
h1 | Squeeze time, ms | 1000 |
t1 | Preheat weld time, ms | 60 |
h2 | Holding time, ms | 15 |
t2 | Weld time, ms | 250 |
h3 | Holding time, ms | 200 |
i1 | Preheat weld current, kA | 6 |
i2 | Weld current, kA | 5.0, 5.5, 6.0 |
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Lee, H.-T.; Chang, Y.-C. Effect of Double Pulse Resistance Spot Welding Process on 15B22 Hot Stamped Boron Steel. Metals 2020, 10, 1279. https://doi.org/10.3390/met10101279
Lee H-T, Chang Y-C. Effect of Double Pulse Resistance Spot Welding Process on 15B22 Hot Stamped Boron Steel. Metals. 2020; 10(10):1279. https://doi.org/10.3390/met10101279
Chicago/Turabian StyleLee, Hwa-Teng, and Yuan-Chih Chang. 2020. "Effect of Double Pulse Resistance Spot Welding Process on 15B22 Hot Stamped Boron Steel" Metals 10, no. 10: 1279. https://doi.org/10.3390/met10101279
APA StyleLee, H.-T., & Chang, Y.-C. (2020). Effect of Double Pulse Resistance Spot Welding Process on 15B22 Hot Stamped Boron Steel. Metals, 10(10), 1279. https://doi.org/10.3390/met10101279