Pan Yongcheng, Zhao Qingliang, Guo Bing, Chen Bing, Wang Jinhu
Center for Precision Engineering, School of Mechatronics Engineering, Harbin Institute of Technology, Harbin 150001, China.
Intelligent Manufacturing Institute, Hunan University of Science and Technology, Xiangtan 411201, China.
Micromachines (Basel). 2020 Jun 30;11(7):652. doi: 10.3390/mi11070652.
Fresnel micro-structured lenses are widely used in the field of modern optoelectronic technology. High-precision Fresnel micro-structured mold is the key technology to achieve its large-scale replication production. Focusing on the surface waviness error of Fresnel micro-structured mold machined by parallel grinding process, this paper conducted theoretical modeling and experiment research. Based on the grinding kinematics theory, the simulation models of the surface waviness topography and the circular waviness profiles of the ground Fresnel micro-structured mold were developed, considering the combined influence of the non-integer rotation speed ratio and other grinding parameters. A series of grinding experiments were carried out to verify the proposed simulation models. The influence of a non-integer rotation speed ratio and a wave-shift value upon the surface waviness error of the ground Fresnel micro-structured molds were analyzed. Both the simulation and experimental results proved that choosing the non-integer rotation speed ratio and a proper wave-shift value could greatly reduce the surface waviness error and improve the surface quality and uniformity.
菲涅耳微结构透镜在现代光电子技术领域有着广泛应用。高精度菲涅耳微结构模具是实现其大规模复制生产的关键技术。针对平行磨削工艺加工的菲涅耳微结构模具表面波纹度误差问题,本文进行了理论建模与实验研究。基于磨削运动学理论,考虑非整数转速比等磨削参数的综合影响,建立了磨削后菲涅耳微结构模具表面波纹度形貌及圆周波纹轮廓的仿真模型。开展了一系列磨削实验对所提仿真模型进行验证。分析了非整数转速比和波移值对磨削后菲涅耳微结构模具表面波纹度误差的影响。仿真和实验结果均表明,选择非整数转速比和合适的波移值可大幅降低表面波纹度误差,提高表面质量和均匀性。