The Effects of Target Thicknesses and Backing Materials on a Ti-Cu Collision Weld Interface Using Laser Impact Welding
Abstract
:1. Introduction
2. Materials and Methods
3. Results and Discussion
3.1. Measuring the Flyer Velocity
3.2. The Effect of Directionality
3.3. The Effect of Target Thickness
3.4. The Effect of Backing Material (Steel versus Acrylic Backing)
3.5. Mechanical Testing (Lap Shear Test)
4. Conclusions
- One noteworthy finding is that utilizing a single launch system, as described previously, enables the welding of efficient joints ranging from 127 µm to 1000 µm of target thickness, without the need for any alterations in the process.
- The wavelength and amplitude of the interfacial waves had greater magnitudes in the direction perpendicular to the stand-off, as compared to the parallel orientation.
- Increasing the target thickness increased the interfacial wave amplitude until approximately twice the flyer thickness was attained; beyond this threshold, a subsequent reduction in interfacial waves was observed.
- Interfacial waves formed closer to the weld center at a distance of 1.5 mm when an acrylic backing was employed, whereas this distance extended to 2 mm in the case of a steel backing.
- The unwelded zone at the center of the weld exhibited a smaller extent in instances where an acrylic backing was used, in contrast to scenarios involving a steel backing.
- Interfacial wavelength and amplitude were greater when an acrylic backing was used, as opposed to the use of a steel backing.
- During lap shear testing, in all cases, the welds did not experience failure at the interface; instead, failures occurred within the base metal. Failures occurred at the Cu side (for 127, 152, and 254 µm target thickness) leaving a complete weld nugget. For thicker target thickness (508 µm and 1 mm), failure occurred at the Ti side around the nugget which indicated that the interfacial joint had a high strength.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Power Density (GW/cm2) | Energy (J) | Wavelength (nm) | Pulse Width (nm) | Spot Size (mm) |
---|---|---|---|---|
1.34 | 3.14 | 1064 | 8 | 5.22 |
Directionality | Perpendicular | Parallel | |||
---|---|---|---|---|---|
Target Thickness (µm) | Wavelength (µm) | Amplitude (µm) | Wavelength (µm) | Amplitude (µm) | |
127 | 16.46 | 3.11 | 9.35 | 1.46 | |
152 | 25 | 4.6 | 22.8 | 4.3 | |
254 | 36.23 | 8.42 | 35.4 | 7.76 | |
508 | 15.8 | 2.83 | 9.85 | 1.85 | |
1000 | 23.15 | 3.1 | 20.45 | 2.26 |
Target Thickness (µm) | Steel Backing | Acrylic Backing | ||
---|---|---|---|---|
Wavelength (µm) | Amplitude (µm) | Wavelength (µm) | Amplitude (µm) | |
127 | 16.46 | 3.11 | 28 | 4.7 |
152 | 25 | 4.6 | 29.6 | 5.53 |
254 | 36.23 | 8.42 | 38.5 | 9.06 |
508 | 15.8 | 2.83 | 38 | 4.43 |
1000 | 23.15 | 3.1 | 29.04 | 5.5 |
Target Thickness (mm) | Steel Backing (mm) | Acrylic Backing (mm) |
---|---|---|
0.127 | 2.14 | 0.33 |
0.152 | 1.95 | 0.31 |
0.254 | 1.91 | 0.27 |
0.508 | 2.16 | 0.29 |
1 | 2.2 | 1.65 |
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Abdelmaola, M.; Thurston, B.; Panton, B.; Vivek, A.; Daehn, G. The Effects of Target Thicknesses and Backing Materials on a Ti-Cu Collision Weld Interface Using Laser Impact Welding. Metals 2024, 14, 342. https://doi.org/10.3390/met14030342
Abdelmaola M, Thurston B, Panton B, Vivek A, Daehn G. The Effects of Target Thicknesses and Backing Materials on a Ti-Cu Collision Weld Interface Using Laser Impact Welding. Metals. 2024; 14(3):342. https://doi.org/10.3390/met14030342
Chicago/Turabian StyleAbdelmaola, Mohammed, Brian Thurston, Boyd Panton, Anupam Vivek, and Glenn Daehn. 2024. "The Effects of Target Thicknesses and Backing Materials on a Ti-Cu Collision Weld Interface Using Laser Impact Welding" Metals 14, no. 3: 342. https://doi.org/10.3390/met14030342