光学与光电技术, 2023, 21 (6): 0058, 网络出版: 2024-02-29  

倾斜表面的纳秒激光抛光研究

Research on Nanosecond Laser Polishing of Inclined Surfaces
作者单位
1 江苏大学材料科学与工程学院, 江苏 镇江 212013
2 江苏大学机械工程学院, 江苏 镇江 212013
摘要
考察倾斜表面纳秒激光抛光后的表面形貌演化规律及表面倾斜程度对抛光效果的影响规律, 可以为增材制造中的自由曲面激光抛光提供参考。采用纳秒激光对不垂直于光轴的粗糙平面进行激光抛光, 并采用激光共聚焦显微镜对激光抛光后的表面形貌进行测试分析。结果表明: 表面倾斜30°时, 抛光后的表面在距离起始点4 mm附近存在表面轮廓波动异常增大的现象, 表面粗糙度值增大到15.80 μm; 倾斜角度增大到45°时, 表面轮廓波动异常增大的位置变化到2 mm附近; 倾斜角度为60°时, 未发生表面轮廓波动异常增大现象。表面轮廓波动异常增大现象反映了激光抛光从过熔型抛光到浅熔型抛光的过渡过程; 自由曲面的激光抛光工艺需要根据抛光区域的倾斜程度和表面粗糙度选定合适激光功率密度和离焦量, 从而实现良好的激光抛光质量。
Abstract
The evolution of surface morphology after nanosecond laser polishing of inclined surfaces and the influence of surface inclination on polishing results are investigated, which may provide a reference for laser polishing of free form surfaces in additive manufacturing. A nanosecond laser is used to laser polish rough surfaces that are not perpendicular to the optical axis, and the surface morphology after laser polishing is measured and analyzed using a laser confocal microscope. The results show that when the surface is tilted at 30°, there is an abnormal increase in surface profile fluctuations on the polished surface near 4 mm from the starting point, and the surface roughness value increases to 15.80 μm. When the inclination angle increases to 45°, the position where the surface profile fluctuation abnormally increases changes to around 2 mm. When the inclination angle is 60°, there is no abnormal increase in surface profile fluctuations. The abnormal increase in surface profile fluctuations reflects the transition process of laser polishing from over melt polishing to shallow melt polishing. The laser polishing process for free-form surfaces requires selecting appropriate laser power density and defocus amount based on the inclination and surface roughness of the polishing area, in order to achieve good laser polishing quality.
参考文献

[1] Xiao H, Chen Y, Liu M, et al. Influence of laser additive manufacturing and laser polishing on microstructures and mechanical properties of high-strength maraging steel metal materials[J]. Appl. Sci., 2022, 12: 10340.

[2] 廖聪豪, 周静, 沈洪. 增材制造TC4钛合金在激光抛光前后的电化学腐蚀性能[J]. 中国激光, 2020, 47(1): 0102003. LIAO Cong-hao, ZHOU Jing, SHEN Hong. Electrochemical corrosion behaviors before and after laser polishing of additive manufactured TC4 Titanium Alloy[J]. Chinese Journal of Lasers, 2020, 47(1): 0102003.

[3] 陈博文, 孙树峰, 王茜, 等. 材料表面激光抛光技术研究进展[J]. 中国表面工程, 2021, 34(6): 74-89. CHEN Bo-wen, SUN Shu-feng, WANG Xi, et al. Research progress of laser polishing technology for material surface[J]. China Surface Engineering, 2021, 34(6): 74-89.

[4] Manco E, Cozzolino E, Astarita A. Laser polishing of additively manufactured metal parts: a review[J]. Surface Engineering, 2022, 38(3): 217-233.

[5] ?wik?a M, Dziedzic R, Reiner J. Influence of overlap on surface quality in the laser polishing of 3D printed inconel 718 under the effect of air and argon[J]. Materials, 2021, 14: 1479.

[6] Richter B, Radel T, Pfefferkorn F E. Sensitivity of surface roughness to laser parameters used for polishing additively manufactured Co-Cr alloy[J]. Surface & Coatings Technology, 2022, 451: 128872.

[7] Solheid J S, Elkaseer A, Wunsch T, et al. Multiobjective optimization of laser polishing of additively manufactured Ti-6Al-4V parts for minimum surface roughness and heat-affected zone[J]. Materials, 2022, 15: 3323.

[8] Xu Z, Ouyang W, Liu Y, et al. Effects of laser polishing on surface morphology and mechanical properties of additive manufactured TiAl components[J]. Journal of Manufacturing Processes, 2021, 65: 51-59.

[9] Liu Y, Ouyang W, Wu H, et al. Improving surface quality and superficial microstructure of LDED Inconel 718 superalloy processed by hybrid laser polishing[J]. Journal of Materials Processing Tech., 2022, 300: 117428.

[10] Zhao Y, Du C, Wang P, et al. The mechanism of In-Situ laser polishing and its effect on the surface quality of nickel-based alloy fabricated by selective laser melting[J]. Metals, 2022, 12: 778.

[11] Li J, Zuo D. Laser polishing of additive manufactured Ti6Al4V alloy: A review [J]. Optical Engineering, 2021, 60(2): 020901.

[12] Gisario A, Barletta M, Veniali F. Laser polishing: A review of a constantly growing technology in the surface finishing of components made by additive manufacturing[J]. The International Journal of Advanced Manufacturing Technology, 2022, 120: 1433-1472.

[13] Ramos J A, Bourell D L, Beaman J J. Surface over-melt during laser polishing of indirect-SLS metal parts[J]. Mat. Res. Soc. Symp. Proc., 2003, 758: LL1.9.

[14] Xu J, Zou P, Kang D, et al. Theoretical and experimental study of bulge formation in laser polishing of 304 stainless steel[J]. Journal of Manufacturing Processes, 2021, 66: 39-52.

[15] Xu J, Zou P, Kang D, et al. Research on the formation mechanism of the surface structure in transition regime of laser polishing 304 stainless steel[J]. Optics & Laser Technology, 2022, 149: 107906.

[16] 李健, 赵珂, 金卫凤. 纳秒激光抛光表面的波纹形成机理[J]. 应用激光, 2022, 42(1): 69-75. LI Jian, ZHAO Ke, JIN Wei-feng. Formation mechanism of ripple on nanosecond laser polished surface[J]. Applied Laser, 2022, 42(1): 69-75.

[17] Kumstel J. Laser polishing of metallic freeform surfaces byusing a dynamic laser beam preforming system[J]. J. Laser Appl., 2021, 33: 022020.

[18] 邹振强, 李健, 胡璐瑶. 纳秒激光打孔孔径随激光参数的变化规律[J]. 光学与光电技术, 2017, 15(5): 58-61.ZOU Zhen-qiang, LI Jian, HU Lu-yao. Diameter Changing regularity with the laser parameters of nanosecond laser drilling[J]. Optics & Optoelectronic Technology, 2017, 15(5): 58-61.

[19] 胡璐瑶, 金卫凤, 黎建麟, 等. 纳秒激光脉冲宽度对熔体体积的影响[J]. 光学与光电技术, 2019, 17(5): 46-52.HU Lu-yao, JIN Wei-feng, LI Jian-lin, et al. Effect of nanosecond laser pulse width on melt volume[J]. Optics & Optoelectronic Technology, 2019, 17(5): 46-52.

[20] 李健, 杨叶, 金卫凤, 等. 激光抛光表面形貌的误差复映规律[J]. 表面技术, 2020, 49(2): 309-315. LI Jian, YANG Ye, JIN Wei-feng, et al. Error remapping of surface morphology by laser polishing[J]. Surface Technology, 2020, 49(2): 309-315.

[21] Gao Y, Wu B, Zhou Y, Tao S. A two-step nanosecond laser surface texturing process with smooth surface finish[J]. Applied Surface Science, 2011, 257: 9960-9967.

[22] Li J, Zou Z, Hu L, Jin W. Discussion of the paper: Surface texturing by pulsed Nd: YAG laser[J]. Tribology International, 2017, 115: 1-2.

[23] Vilhena L M, Sedla?ek M, Podgornik B, et al. Surface texturing by pulsed Nd: YAG laser[J]. Tribology International, 2009, 42(10): 1496-1504.

李健, 徐伟, 陈晟, 张怡阳, 齐梓旭, 文世清, 金卫凤. 倾斜表面的纳秒激光抛光研究[J]. 光学与光电技术, 2023, 21(6): 0058. 李健, 徐伟, 陈晟, 张怡阳, 齐梓旭, 文世清, 金卫凤. Research on Nanosecond Laser Polishing of Inclined Surfaces[J]. OPTICS & OPTOELECTRONIC TECHNOLOGY, 2023, 21(6): 0058.

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