Volume 49 Issue 2
Mar.  2020
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Tan Fengfu, Huang Zhigang, Zhang Silong, Qin Laian, Hou Zaihong, Gao Qiong, Liu Hu. Detector array target calibration system based on point-by-point scanning[J]. Infrared and Laser Engineering, 2020, 49(2): 0213003-0213003. doi: 10.3788/IRLA202049.0213003
Citation: Tan Fengfu, Huang Zhigang, Zhang Silong, Qin Laian, Hou Zaihong, Gao Qiong, Liu Hu. Detector array target calibration system based on point-by-point scanning[J]. Infrared and Laser Engineering, 2020, 49(2): 0213003-0213003. doi: 10.3788/IRLA202049.0213003

Detector array target calibration system based on point-by-point scanning

doi: 10.3788/IRLA202049.0213003
  • Received Date: 2019-11-05
  • Rev Recd Date: 2019-12-10
  • Publish Date: 2020-03-02
  • In order to analyze the performance of the laser emission system, it was necessary to measure the spatial-temporal distribution of the absolute power density of the laser spot. The detector array target was one of the effective methods. To achieve quantitative analysis, the detector array target needed to be calibrated. The number of detector array target units was large, and the calibration was difficult. It was very important to design an effective calibration system. This paper designed a new calibration system, which adopted the point-by-point scanning method. This way had the characteristics of wide applicability, low cost and high precision. In order to test the system, taking a project as an example, the measurement uncertainty of the calibration system was tested and analyzed. The results show that the measurement uncertainty in the visible light band is 2.99%, and the measurement uncertainty in the near-infrared band is 3.62%. The measurement uncertainty in the mid-infrared band is 6.17%. This calibration system was an effective way for target calibration of detector array, it was worth learning.
  • [1] Su Yi, Wan Min. High Energy Laser System[M]. Beijing:National Defense Industry Press, 2004. (in Chinese)
    [2] Wang Yunping. Laser facula measurement technology using detector array[J]. Laser Journal, 2007, 28(4):22-23. (in Chinese)
    [3] Wang Zhenbao, Feng Guobin, Yang Pengling,et al. Detector array for measuring spatio-temporal distribution of near infrared laser power density[J]. Infrared and Laser Engineering, 2011, 40(5):935-938. (in Chinese)
    [4] Sun Zhiyuan, Chang Songtao, Zhu Wei, et al. Simplifying method of radiance calibration for MWIR detector[J]. Infrared and Laser Engineering, 2014, 43(7):2132-2137. (in Chinese)
    [5] Chen Haidong, Zhao Kun, Shi Xueshun, et al. Laser source used for measurement absolute spectral responsivity of long-wave infrared detectors[J]. Infrared and Laser Engineering, 2017, 46(12):1205002. (in Chinese)
    [6] Zhang Lei, Lin Zhiqiang. Calibration technique of spectral radiation for an infrared trap detector[J]. J Infrared Millim Waves, 2018, 37(5):572-577. (in Chinese)
    [7] Mo Xiaoqin. Linear and nonlinear fitting based on least squares method[J]. Wireless Internet Technology, 2019, 4(2):128-129. (in Chinese)
    [8] Ji Yulong, Mao Jingxiang, Li Wenxia, et al. Research on spectral response test system of digitalization infrared detector[J]. Infrared Technology, 2017, 39(10):897-902. (in Chinese)
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Detector array target calibration system based on point-by-point scanning

doi: 10.3788/IRLA202049.0213003
  • 1. Key Laboratory of Atmospheric Optics, Anhui Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Hefei 230031, China;
  • 2. University of Science and Technology of China, Hefei 230026, China;
  • 3. Electronic Equipment Testing Center, Luoyang 471000, China

Abstract: In order to analyze the performance of the laser emission system, it was necessary to measure the spatial-temporal distribution of the absolute power density of the laser spot. The detector array target was one of the effective methods. To achieve quantitative analysis, the detector array target needed to be calibrated. The number of detector array target units was large, and the calibration was difficult. It was very important to design an effective calibration system. This paper designed a new calibration system, which adopted the point-by-point scanning method. This way had the characteristics of wide applicability, low cost and high precision. In order to test the system, taking a project as an example, the measurement uncertainty of the calibration system was tested and analyzed. The results show that the measurement uncertainty in the visible light band is 2.99%, and the measurement uncertainty in the near-infrared band is 3.62%. The measurement uncertainty in the mid-infrared band is 6.17%. This calibration system was an effective way for target calibration of detector array, it was worth learning.

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