Optical design of airborne hyperspectral imaging system with wide field of view

被引:0
作者
Dong, Wei [1 ,2 ]
Zhou, Jinsong [1 ]
Nie, Yunfeng [1 ]
Huang, Min [1 ]
机构
[1] Key Laboratory of Computational Optical Imaging Technology, Chinese Academy of Sciences, Academy of Opto-Electronics
[2] University of Chinese Academy of Sciences
来源
Dong, W. (dongwei@aoe.ac.cn) | 1600年 / Chinese Optical Society卷 / 34期
关键词
Féry prism; Hyperspectral imager; Imaging systems; Multi-configuration; Wide field of view;
D O I
10.3788/AOS201434.0511007
中图分类号
学科分类号
摘要
In order to meet the development needs of airborne hyperspectral imaging system, an airborne hyperspectral imaging system with wide field of view is presented. In the system, the pre-telescope system is a transmission system with wide field and wide-spectrum, and the hyperspectral imager is an improved Féry-prism relay system based on Offner secondary. Zemax multi-configuration is used twice in the system design process, and we attempt to design the improved Féry-prism of Offner secondary as a hyperspectral imager for the first time. Besides, the Féry-prism hyperspectral imager is firstly integrated as hyperspectral imaging system for system analysis. The design is innovative both on the structure and methods. The design results show that the field of view of the system is 28°, when the height of the airborne payload is 5 km, Swath width with the total system is 2.493 km, and the ground sampled distance is 0.6 m. The full spectral modulation transfer functions of field half right and field half left are greater than 0.6. Keystones and smiles about maxium are close to 0.2 pixel, and the image quality closes to the diffraction limit.
引用
收藏
相关论文
共 12 条
[1]  
Fery C., A prism with curved faces for spectrograph or spectroscope, Astrophysical Journal, 34, pp. 79-87, (1911)
[2]  
Warren D.W., Hackwell J.A., Gutierrez D.J., Compact prism spectrographs based on aplanatic principles, Opt Eng, 36, 4, pp. 1174-1182, (1997)
[3]  
Cutter M.A., Lobb D.R., Williams T.L., Et al., Integration and testing of the compact hight-resolution imaging spectrometer (CHRIS, SPIE, 3753, pp. 180-191, (1999)
[4]  
Sang B., Schubert J., Kaiser S., Et al., The EnMAP hyperspectral imaging spectrometer: instrument concept, calibration and technology, SPIE, 7086, (2008)
[5]  
Lee J., Jang T., Yang H., Et al., Optical design of a compact imaging spectrometer for STSAT3, J Opt Soc Korea, 12, 4, pp. 262-268, (2008)
[6]  
Nie Y.F., Zhou J.S., Wei X.X., Design of a miniature hyper-spectral imager, Proc IEEE CFP1153K-PRT, 4, pp. 3482-3484, (2011)
[7]  
Nie Y.F., Xiangli B., Zhou J.S., Et al., Design of airborne imaging spectrometer based on curved prism, SPIE, 8197, (2011)
[8]  
Cheng X., Hong Y., Zhang B., Et al., Design of compact Offner hyperspectral imaging system with Féry prism, Optics and Precision Engineering, 18, 8, pp. 1173-1178, (2010)
[9]  
Zheng Y., Design of compact Offner spectral imaging system, Optics and Precision Engineering, 13, 6, pp. 650-657, (2005)
[10]  
Yang J., Tang Y., Bayanheshig, Et al., Design of Dyson concentric optical hyperspectral imaging system with achromatized Féryprism, Acta Optica Sinica, 32, 11, (2012)