Li Zexiao, Fang Fengzhou, Zhang Xiaodong, Liu Xianlei, Gao Huimin
Opt Express. 2017 Oct 16;25(21):25243-25256. doi: 10.1364/OE.25.025243.
Freeform optics has been regarded as the next generation of the optical components, especially those with non-circular apertures are playing an increasingly significant role in scanning field and specialized optical system. However, there still exist challenges to machine non-circular optical freeform surface. This paper is focused on highly efficiently generating freeform surfaces with optical surface quality by ultra-precision turning using a fast tool servo (FTS). A systematic strategy of machining smooth freeform surfaces with rectangular aperture is proposed in this paper. The contour of freeform optics is decomposed and assigned to the motions of slide and FTS back-and-forth. An optimized model is established for deriving the profile of the rotational component to cater for the capacity of FTS. Tool path reconstruction is carried out to generate a smooth tool trajectory and modified the contour to cater for the stroke of FTS. Simulation is adopted to analyze the machining property of a typical rectangular freeform surface. A rectangular freeform surface is efficiently machined via the proposed method, where a micron level profile error and nanometric finish in Ra are realized. Characteristics of reflection are analyzed via experiment and simulation. Prospects of such machining approach are discussed to provide guidance to future study.
自由曲面光学元件被视为下一代光学元件,尤其是那些具有非圆形孔径的元件在扫描领域和专用光学系统中发挥着越来越重要的作用。然而,加工非圆形光学自由曲面仍然存在挑战。本文重点研究了利用快速刀具伺服(FTS)通过超精密车削高效生成具有光学表面质量的自由曲面。本文提出了一种加工具有矩形孔径的光滑自由曲面的系统策略。自由曲面光学元件的轮廓被分解并分配给滑块和FTS的往复运动。建立了一个优化模型来推导旋转部件的轮廓,以适应FTS的能力。进行刀具路径重构以生成光滑的刀具轨迹,并修改轮廓以适应FTS的行程。采用仿真分析了典型矩形自由曲面的加工性能。通过所提出的方法高效加工了一个矩形自由曲面,实现了微米级的轮廓误差和纳米级的表面粗糙度Ra。通过实验和仿真分析了反射特性。讨论了这种加工方法的前景,为未来的研究提供指导。