Method for changing surface wettability of invar alloy through femtosecond laser
A technology of Invar alloy and femtosecond laser, which is applied in the field of changing the surface wettability of Invar alloy, can solve the problems that micron-level morphology cannot be processed, and it is difficult to reach the ablation threshold of Invar alloy.
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Embodiment 1
[0046] The invar base material is cut by wire cutting, and the invar base material is polished with 240-grit water-grinding paper until the silver-white metallic luster is exposed. By setting the scanning path of the femtosecond laser as discontinuous non-moving processing, that is, single-point array arrangement, the point spacing is 160 μm, the processing power is 12 W, the number of repetitions is 1, and the single-point dwell time is 10000 μs, and micro-pits are prepared on the surface. shape (such as figure 1 ) shown. Then, the processed Invar alloy was ultrasonically cleaned for 10 minutes, and the in-situ water wetting angle was detected on its surface, and the results were as follows figure 2 shown. The cross section of the micropit is V-shaped (such as image 3 ), that is, the pits have a conical shape (such as Figure 4 ). Compare the original morphology with the wetting angle (e.g. Figure 5 It can be found that the Invar alloy is hydrophilic under this morph...
Embodiment 2
[0048] The invar base material is cut by wire cutting, and the invar base material is polished with 240-grit water-grinding paper until the silver-white metallic luster is exposed. By setting the scanning path of the femtosecond laser to continuous processing, that is, the processing path is a straight line, the line spacing is 160 μm, the processing power is 12 W, the number of scans is 1, and the scanning rate is 1000 mm / s, the microgrooves are prepared on the surface (such as Image 6 ) shown. Then, the processed Invar alloy was ultrasonically cleaned for 10 minutes, and the in-situ water wetting angle was detected on its surface, and the results were as follows Figure 7 shown. The cross-section of the microgroove is V-shaped (such as Figure 8 ), that is, the microgrooves are in the shape of inverted triangular pyramids and inverted triangular strips (such as Figure 9 ). Compare the original morphology with the wetting angle (e.g. Figure 5 ), it can be found that t...
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