Optical design of large field and low distortion coaxial three mirror system with free-form surface

被引:0
作者
Gong, Dun [1 ]
Wang, Hong [1 ]
机构
[1] Key Laboratory of Optical System Advanced Manufacturing Technology, Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun
来源
Guangxue Xuebao/Acta Optica Sinica | 2014年 / 34卷 / 07期
关键词
Coaxial three mirror system; Computer-generated holography; Free-form surface; Optical design;
D O I
10.3788/AOS201434.0722001
中图分类号
学科分类号
摘要
Remote sensing mapping applications need optical system with long focal length, wide width, low distortion, small volume, and the optical system can be designed for integration on satellite platform. Through the structure selection, modified coaxial three mirror system is adopted to realize long focal length, wide width and low distortion at the same time. Because of the influence of the second obscuration and large field, the image quality of general aspheric optimization design cannot meet the requirements. Degrees of freedom are increased efficiently by the introduction of free-form surface. After optimization design, the optical design modulation transfer function (MTF) is greater than 0.418 at 72 lp/mm, and the maximum relative distortion is less than 0.00145%. Imaging quality is improved significantly. The free-form surface is tested and fine grinded by the application of computer-generated holography (CGH) technology, the root mean square (RMS) of remnant wavefront error is 0.007λ, and the peak to valley (PV) value is 0.027λ, remnant wavefront error meet the requirements of free-form surface irregularity tolerance. Laboratory static MTF is tested after processing and adjustment, the minimum static MTF is 0.225 at 72 lp/mm, the image quality meet the requirements of technical indicators.
引用
收藏
相关论文
共 10 条
[1]  
Chang J., Weng Z., Jiang H., Et al., Design of long focal length space optical system with three reflective mirror, Optics and Precision Engineering, 9, 4, pp. 315-318, (2001)
[2]  
Chang J., Weng Z., Jiang H., Et al., Design of optical system for space camera with long focal length, wide coverage and high resolution, Optics and Precision Engineering, 11, 1, pp. 55-58, (2003)
[3]  
Yang B., Wang Y., Computer aided design of freeform reflector, Acta Optica Sinica, 24, 6, pp. 721-724, (2004)
[4]  
Li R., Du X., Zhang Z., Design and Advanced Manufacturing Technology for Freeform Optics, (2005)
[5]  
Hicks R.A., Direct methods for freeform surface design, 6668, (2007)
[6]  
Wang J., Total Design of Optical Instrument, pp. 3-5, (1998)
[7]  
Han C., Study on optical system of high resolution space camera, Optics and Precision Engineering, 16, 11, pp. 2164-2172, (2008)
[8]  
CODE V Transition Guide for Current Users Version 9.5, pp. 87-100, (2004)
[9]  
Lindlein N., Analysis of the disturbing diffraction orders of computer-generated holograms used for testing optical aspherics, Appl Opt, 40, 16, pp. 2698-2709, (2001)
[10]  
Liu H., Lu Z., Li F., Et al., Analysis for property of CGH on spherical surface used for aspheric surface testing, Opto-Electronic Engineering, 31, 7, pp. 38-41, (2004)