Fig.3 Field curves and distortion(@20°C)
3. Conclusion
In this paper, a long-wave infrared optical athermal lens with a focal length of 90 mm, a relative aperture of 1:1, and a full field of view of 13.8°is designed. Compatible with 1024°C×768, 17μm large area array uncooled detectors. For tracking, searching, monitoring, and other fields.
The lens has the advantages of simple structure, large-area array (large field of view), high resolution, wide operating temperature range, and good manufacturability. It has a wide range of application prospects in military and civilian fields, such as seekers or space exploration.
As a professional manufacturer of
thermal infrared lenses (including LWIR, MWIR, and SWIR), we have won praise and trust from many customers with our excellent technology and high-quality products. We have a professional production team and a range of quality control. At the same time, we can also provide thoughtful one-stop service according to customer needs. If you are interested in our LWIR lens, please contact us immediately!
References:
[1] ZHANG Xinting, AN Zhiyong. Design of Infrared Athermal Optical System for Dual-Band with Double-Layer Harmonic Diffraction Element[J]. Infrared Technology, Acta Optica Sinica, 2013, 33(6): 0622004.
[2] BAI Yu, LIAO Zhiyuan, LI Hua, et al. Application of the chalcogenide glass in modern infrared thermal imaging systems[J]. Chinese Optics, 2014, 7(3): 449-455.
[3] ZHANG Xin, QIAO Yanfeng, ZHU Mingchao, et al. Two-Lens Athermalized Infrared Telephoto Objective[J]. Acta Optica Sinica, 2014, 34(8): 0822004.
[4] MI Shilong, MU Da, MU Meng. Athermalization of a compact LWIR optical system[J]. Infrared and Laser Engineering, 2015, 44(10): 3032-3036.
[5] JIANG Lun, HU Yuan, DONG Keyan, et al. Passive athermal design of dual-band infrared optical system[J]. Infrared and Laser Engineering, 2015, 44(11): 3353-3357.
[6] PAN Junhua. Design, Manufacture, and Testing of Asphere Optics[M]. Suzhou: publishing house of Suzhou University, 2004: 1-6.
[7] WEI Heli, CHEN Xiuhong, RAO Ruizhong, et al. A moderate-spectralresolution transmittance model based on fitting the line-by-line calculation[J]. Opt. Express, 2007, 15(13): 8360-8370.
[8] Safren H G. Computer code to calculate line by line atmospheric transmission spectra on a microcompute[R]. NASA-TM-100686, 1987.
[9] CHEN Fangfang, GENG Rui, LV Yong. Research on the transmittance
model of laser Infrared atmospheric transmission[J]. Infrared Technology, 2015, 37(6): 496-501.
[10] FANG Jing, LIU Wenqing, ZHANG Tianshu. A Line-by-Line trace gas
absorption model and its application in NDIR gas detection technology[J]. Spectroscopy and Spectral Analysis, 2008, 28(6): 1269-1271.
[13] Gamache R R, Kennedy S, Hawkins R, et al. Total internal partition sums for molecules in the terrestrial atmosphere[J]. J. Molecular Structure, 2000, 517-518(16): 407-425.
[11] Hui A K, Armstrong B H, Wray A A. Rapid computation of the Voigt
and complex error functions[J]. J. Quantit. Spectrosc. and Radiative Transfer, 1978, 19(5): 509-516.
[12] LIN Jieli. Research on spectral line profile and line width of high-resolution (saturation) molecular spectra and its application[D]. Wuhan: Institute of Physics and Mathematics the Chinese Academy of Science, 2000.
[13] Olivero J J, Longbothum R L. Empirical Fits to the Voigt Line Width: A
Brief Review[J]. Quantit. Spectrosc. and Radiative Transfer, 1977, 17(2): 233-236.