| Literature DB >> 28801665 |
Ling Shao1,2, Amit Datye1,3, Jiankang Huang4,5, Jittisa Ketkaew1, Sung Woo Sohn1, Shaofan Zhao1, Sujun Wu2, Yuming Zhang5, Udo D Schwarz1,3, Jan Schroers6,7.
Abstract
We used pulsed laser beam welding method to join Pd43Cu27Ni10P20 (at.%) bulk metallic glass and characterized the properties of the joint. Fusion zone and heat-affected zone in the weld joint can be maintained completely amorphous as confirmed by X-ray diffraction and differential scanning calorimetry. No visible defects were observed in the weld joint. Nanoindentation and bend tests were carried out to determine the mechanical properties of the weld joint. Fusion zone and heat-affected zone exhibit very similar elastic moduli and hardness when compared to the base material, and the weld joint shows high ductility in bending which is accomplished through the operation of multiple shear bands. Our results reveal that pulsed laser beam welding under appropriate processing parameters provides a practical viable method to join bulk metallic glasses.Entities:
Year: 2017 PMID: 28801665 PMCID: PMC5554243 DOI: 10.1038/s41598-017-08460-6
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Welding parameters of the pulsed laser beam welding.
| Peak power, | Duty cycle, | Welding speed, | Pulse frequency, | Spot diameter, |
|---|---|---|---|---|
| 750 | 7 | 20 | 10 | 1 |
| 825 | 7 | 20 | 10 | 1 |
| 900 | 7 | 20 | 10 | 1 |
| 975 | 7 | 20 | 10 | 1 |
| 1050 | 7 | 20 | 10 | 1 |
| 1125 | 7 | 20 | 10 | 1 |
Figure 1Schematic of the pulsed laser butt welding. A laser beam of controllable power was used to weld metallic glass pieces. The orange arrow indicates the direction of the laser beam is travelling.
Figure 2Schematic P-h curve for Berkovich indentation. P max is the maximum indentation load, h max is the maximum indentation depth, h f is the final depth, the elastic strain energy W elastic is the area under the unloading curve, and the indentation absorbed energy W plastic is the area under the loading curve.
Figure 3Morphology of bead-on-plate of Pd43Cu27Ni10P20 bulk metallic glass obtained by the pulsed laser welding method under 1050 W laser beam power.
Figure 4X-ray diffraction pattern of the cross-section of bead-on-plate of Pd43Cu27Ni10P20 bulk metallic glass using the pulsed laser welding method with various powers.
Figure 5X-ray diffraction patterns (a) and differential scanning calorimetry thermograms (b) of the base material (BM), heat-affected zone (HAZ) and fusion zone (FZ) in butt joint of Pd43Cu27Ni10P20 bulk metallic glass under laser beam power of 1050 W.
Figure 6Indentation modulus, hardness and W elastic/W total, vs. the distance from the middle of weld seam, plot for the butt joint of Pd43Cu27Ni10P20 bulk metallic glass obtained by the pulsed laser welding method.
Figure 7Fracture morphology after bend tests of Pd43Cu27Ni10P20 bulk metallic glass: (a) weld joint; (b) base material.