Wang Chao, Zhao Zhenyu, Zhou Houming, Zeng Junyong, Zhou Zhanwang
School of Sino-German Robotics, Shenzhen Institute of Information Technology, Shenzhen 518172, China.
School of General Aviation, Jingchu University of Technology, Jingmen 448001, China.
Micromachines (Basel). 2023 Oct 29;14(11):2012. doi: 10.3390/mi14112012.
Laser polishing is a noncontact and efficient processing method for surface treatment of different materials. It removes surface material and improves its quality by means of a laser beam that acts directly on the surface of the material. The material surface roughness is a major criterion that evaluates the polishing effect when alumina ceramics are polished by a laser. In this study, the effects of three factors, namely, laser power, scanning speed, and pulse frequency, on the surface roughness were investigated through orthogonal tests. The optimum polishing parameters were obtained through a comparison of the experimental results. Compared to the initial surface roughness (Ra = 1.624 μm), the roughness of the polished surface was reduced to Ra = 0.549 μm. A transient two-dimensional model was established by the COMSOL Multiphysics 5.5, and the flow condition of the material inside the molten pool of laser-polished alumina ceramics and the surface morphology of the smoothing process were investigated by utilizing the optimal polishing parameters obtained from the experiments. The simulation results showed that in the process of laser polishing, the fluid inside the molten pool flowed from the peaks to the valleys under the action of capillary force, and the inside of the molten pool tended to be smoothened gradually. In order to verify the correctness of the numerical model, the surface profile at the same position on the material surface was compared, and the results showed that the maximum error between the numerical simulation and the experimental results was 17.8%.
激光抛光是一种用于不同材料表面处理的非接触式高效加工方法。它通过直接作用于材料表面的激光束去除表面材料并提高其质量。当用激光抛光氧化铝陶瓷时,材料表面粗糙度是评估抛光效果的主要标准。在本研究中,通过正交试验研究了激光功率、扫描速度和脉冲频率这三个因素对表面粗糙度的影响。通过比较实验结果获得了最佳抛光参数。与初始表面粗糙度(Ra = 1.624μm)相比,抛光后表面的粗糙度降低到Ra = 0.549μm。利用COMSOL Multiphysics 5.5建立了瞬态二维模型,并利用从实验中获得的最佳抛光参数研究了激光抛光氧化铝陶瓷熔池内部材料的流动状况以及平滑过程的表面形貌。模拟结果表明,在激光抛光过程中,熔池内部的流体在毛细力作用下从峰部流向谷部,熔池内部逐渐趋于平滑。为了验证数值模型的正确性,比较了材料表面同一位置的表面轮廓,结果表明数值模拟与实验结果之间的最大误差为17.8%。