Wan Songlin, Wei Chaoyang, Hong Zhi, Shao Jianda
Opt Express. 2020 Mar 16;28(6):8959-8973. doi: 10.1364/OE.388848.
In the field of ultra-precision manufacturing, the mid-spatial-frequency (MSF) error can severely affect the performance of the optical elements, but it is rather difficult to quantitatively predict the MSF error distribution. In this paper, the piecewise-path convolution (PPC) analysis is established to investigate the characteristic and the mechanism of the MSF error. The path type, tool influence function (TIF), feed rate, movement type, etc. are all considered mathematically in the analysis. This method can quantitatively predict the MSF error distribution. The coupling relationship among the path type, TIF and the MSF error are proved through the filtering theory. Besides, the analysis reveals the mathematical relationship between the tool movement type (orbital motion, radial runout) and the MSF error; the results show that the tool motion can also introduce non-negligible MSF error. Based on the research above, two selection formulae of path type, TIF and polishing parameters are provided for low MSF error polishing, which gives the theoretical guidance for the parameter selection in deterministic polishing. Practical experiments demonstrate the validity of the analysis results and conclusions.
在超精密制造领域,中频误差(MSF)会严重影响光学元件的性能,但很难定量预测中频误差分布。本文建立了分段路径卷积(PPC)分析方法来研究中频误差的特性和产生机理。在分析中,从数学角度考虑了路径类型、刀具影响函数(TIF)、进给速度、运动类型等因素。该方法能够定量预测中频误差分布。通过滤波理论证明了路径类型、刀具影响函数与中频误差之间的耦合关系。此外,分析揭示了刀具运动类型(公转运动、径向跳动)与中频误差之间的数学关系;结果表明,刀具运动也会引入不可忽视的中频误差。基于上述研究,给出了两种用于低中频误差抛光的路径类型、刀具影响函数和抛光参数的选择公式,为确定性抛光中的参数选择提供了理论指导。实际实验验证了分析结果和结论的有效性。