Study on the Microstructure Evolution and Ablation Mechanism of SiCp/Al Composites Processed by a Water-Jet Guided Laser
Abstract
1. Introduction
2. Experimental Setup
2.1. SiCp/Al Composites
2.2. Equipment and Procedure
2.3. Characterization
3. Results and Discussion
3.1. Microgroove Quality
3.1.1. Effects of Laser Power
3.1.2. Effects of Scanning Speed
3.1.3. Effects of Water Jet Pressure
3.2. Microstructure Evolution
3.3. Ablative Mechanism
4. Conclusions
- (1)
- During the water-jet guided laser machining of the microgroove of SiCp/Al composites,. With the increase in laser power, the depth of the microgroove increases from 154 μm to 492 μm, the width from 63 μm to 74 μm, and the depth-to-width ratio from 2.45 to 6.62; with the increase in scanning speed, the depth of the microgroove decreases from 525.33 μm to 227.16 μm, and the width from 67.61 μm to 71.02 μm, and the depth-to-width ratio from 7.77 to 3.20. With the increase in water jet pressure, the depth increases from 312.29 μm to 3.20. With the increase in water jet pressure, the depth increased from 312.29 μm to 362.39 μm, the width decreased from 71.59 μm to 62.78 μm, and the depth-to-width ratio increased from 4.38 to 5.77.
- (2)
- Under laser irradiation, Al matrix and SiC particles have different chemical reactions at different temperatures. After the action of the water-jet guided laser, the content of Al in the sediments decreased, while the content of C, Si, and O increased.
- (3)
- Water-jet guided laser processing SiCp/Al composites mainly produces thermal–mechanical coupling and a chemical reaction synergistic effect: the material is melted and vaporized under the action of high energy laser beam, and the SiC particles are oxidized and thermally decomposed at local high temperatures due to high thermal stability; at the same time, under the action of a high pressure water beam, the molten residue and other substances are removed, ensuring the high cleanliness and precision of microgroove processing.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Properties | Parameters |
---|---|
Density [kg·m−3] | 2.88 |
Elastic modulus [GPa] | 95 |
Tensile strength [MPa] | 480 |
Thermal conductivity [W·m−1·C−1] | 225.3 |
Specific heat capacity [J·Kg−1·°C−1] | 522.1 |
particle volume fraction [%] | 15 |
Parameter | Value |
---|---|
Wavelength λ [nm] | 532 |
Nozzle diameter d [µm] | 50 |
Beam height h [µm] | 30 |
Repetition frequency f [kHz] | 10 |
Laser Processing Parameters | Values |
---|---|
Laser power P [W] | 10, 15, 20, 25 |
Scanning speed v [mm/s] | 0.5, 1, 1.5, 2 |
Water jet pressure F [MPa] | 15, 20, 25, 30 |
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Yin, W.; Yu, Z.; Xing, G.; Yang, F.; Dong, Z. Study on the Microstructure Evolution and Ablation Mechanism of SiCp/Al Composites Processed by a Water-Jet Guided Laser. Materials 2025, 18, 2749. https://doi.org/10.3390/ma18122749
Yin W, Yu Z, Xing G, Yang F, Dong Z. Study on the Microstructure Evolution and Ablation Mechanism of SiCp/Al Composites Processed by a Water-Jet Guided Laser. Materials. 2025; 18(12):2749. https://doi.org/10.3390/ma18122749
Chicago/Turabian StyleYin, Wendian, Ze Yu, Guanghao Xing, Feng Yang, and Zhigang Dong. 2025. "Study on the Microstructure Evolution and Ablation Mechanism of SiCp/Al Composites Processed by a Water-Jet Guided Laser" Materials 18, no. 12: 2749. https://doi.org/10.3390/ma18122749
APA StyleYin, W., Yu, Z., Xing, G., Yang, F., & Dong, Z. (2025). Study on the Microstructure Evolution and Ablation Mechanism of SiCp/Al Composites Processed by a Water-Jet Guided Laser. Materials, 18(12), 2749. https://doi.org/10.3390/ma18122749