Kang Wenjun, Seigo Masafumi, Xiao Huapan, Wang Daodang, Liang Rongguang
Wyant College of Optical Science, The University of Arizona, Tucson, AZ 85719, USA.
State Key Laboratory of Ultra-Precision Machining Technology, Department of Industrial and System Engineering, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong, China.
Micromachines (Basel). 2022 Sep 21;13(10):1564. doi: 10.3390/mi13101564.
On the demand of low-cost, lightweight, miniaturized, and integrated optical systems, precision lenslet arrays are widely used. Diamond turning is often used to fabricate lenslet arrays directly or molds that are used to mold lenslet arrays. In this paper, mainly by real-time monitoring position following error for slow tool servo, different fabrication parameters are quantitatively studied and optimized for actual fabrication, then by actual fabrication validation, uniform and high-fidelity surface topography across the actual whole lenslet array is achieved. The evaluated fabrication parameters include sampling strategy, inverse time feed, arc-length, etc. The study provides a quick, effective, and detailed reference for both convex and concave lenslet array cutting parameter selection. At the end, a smooth zonal machining strategy toolpath is demonstrated for fabricating concave lenslet arrays.
在低成本、轻量化、小型化和集成光学系统的需求推动下,精密微透镜阵列得到了广泛应用。金刚石车削常用于直接制造微透镜阵列或用于模压微透镜阵列的模具。本文主要通过对慢刀伺服的位置跟踪误差进行实时监测,对不同的加工参数进行定量研究和优化以用于实际加工,然后通过实际加工验证,在整个实际微透镜阵列上实现了均匀且高保真的表面形貌。评估的加工参数包括采样策略、逆时间进给、弧长等。该研究为凸凹微透镜阵列切削参数的选择提供了快速、有效且详细的参考。最后,展示了一种用于制造凹微透镜阵列的平滑分区加工策略刀具路径。