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微光成像实验平台的光路设计 被引量:3

Optical Path Design of Low-light-level Imaging Experimental Platform
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摘要 将多像素光子计数器(Multi-pixel Photon Counter,MPPC)应用于三维成像,MPPC与光学成像结构相结合,对微光成像实验平台进行了光路设计。该设计将平面探测改为实物立体探测,同时实现极低照度下的目标成像。设计了一个焦距范围为30~85 mm,视场大于20°,场曲小于2%的光学成像结构,并通过光学设计软件对光学结构进行优化,使其满足设计指标。搭建了二维微光成像系统进行实物物体探测。通过实验验证,该系统可以实现10-4 lx以及更低照度的微光环境下,40 cm距离的目标物体的二维成像。 A multi-pixel photon counter(MPPC)is applied to three-dimensional imaging,and combined with the optical imaging structure an optical path is designed for the LLL imaging experimental platform.The optical path design changes the planar detection to physical stereoscopic detection,and achieves target imaging at very low illumination.In the light path section,the light path design principle is introduced,an optical imaging structure with a focal length of 30~85 mm,a field of view greater than 20°and a field curvature of less than 2%is designed.The optical design software is used to optimize the optical structure to meet the design indexes.A two-dimensional LLL imaging system is built to detect real objects.It is verified by experiments that the system can realize the two-dimensional imaging of the target object with a distance of 40 cm under LLL environment with 10-4 lx and lower illumination.
作者 李英 尹丽菊 申晋 寇廷栋 邹囯峰 潘金凤 LI Ying;YIN Liju;SHEN Jin;KOU Tingdong;ZOU Guofeng;PAN Jinfeng(School of Electrical and Electronic Engineering,Shandong University of Technology,Zibo 255049,Shandong,China)
出处 《实验室研究与探索》 CAS 北大核心 2019年第12期75-78,155,共5页 Research and Exploration In Laboratory
基金 国家自然科学基金青年基金项目(61801272) 大学生创新创业计划项目(20181043304X06) 2018张店区校城融合资助项目(9001/118228)
关键词 微光成像 光路设计 多像素光子计数器 光学优化 low-light-level imaging optical path design multi-pixel photon counter(MPPC) optical optimization
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  • 1A McCarthy, Ximing Ren, Adriano Della Frera, et al.. Kilometer-range, high resolution depth imaging via 1560 nm wavelength single- photon detector[J]. Opt Express, 2013, 21(19): 8904-8915.
  • 2Philip A Hiskett, Colin S Parry, G S Buller, et al.. A photon-counting time-of-flight ranging technique developed for the avoidance of range ambiguity at gigahertz clock rates[J]. Opt Express, 2013, 16(18): 13685-13698.
  • 3A McCarthy, R J Collins, N J Krichel, et al.. Long-range time-of-flight scanning sensor based on high-speed time-correlated single- photon counting[J]. Appl Opt, 2009, 48(32): 6241-6251.
  • 4Hyunjung Shim, Seungkyu Lee. Hybrid exposure for depth imaging of a time-of-flight depth sensor[J]. Opt Express, 2014, 22(11): 13393- 13402.
  • 5Ahmed Kirmani, Dheera Venkatraman, Dongeek Skin, et aL. First-photon imaging[J]. Science, 2014, 343(3): 58-61.
  • 6Ahmed Kirmani, Dheera Venkatraman, Dongeek Skin, et al.. Spatio-temporal regularization for range imaging with high photon efficiency[C]. SPIE, 2013, 8858: 88581F.
  • 7Ahmed Kirmani, Dheera Yenkatraman, Dongeek Skin, et al.. Parametric Poisson process imaging[J]. IEEE, 2013: 1053-1056.
  • 8Markus Henriksson. Detection probabilities for photon-counting avalanche photodiodes applied to a laser radar system[J]. Appl Opt, 2005, 44(24): 5140-5147.
  • 9Daniel G Fouche. Detection and false-alarm probabilities for laser radars that use Geiger-mode detectors[J]. Appl Opt, 2003, 42(27): 5388-5398.
  • 10R D Richmond, S C Cain. Direct-detection LADAR Systems[M]. USA: SPIE Press, 2010.

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