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MWIR thermal imaging spectrometer based on the acousto-optic tunable filter

机译:基于声光可调滤波器的MWIR热成像光谱仪

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摘要

Mid-wavelength IR (MWIR) thermal imaging spectrometers are widely used in remote sensing, industrial detection, and military applications. The acousto-optic tunable filter (AOTF)-based spectrometer has the advantages of fast tuning, light weight, and no moving parts, which make it ideally suited for MWIR applications. However, when designing an AOTF imaging spectrometer, the traditional method uses a refractive grating or parallel glass model in optical design software to simulate the AOTF, lowering the imaging performance of the optical system. In this paper, an accurate simulating model for an actual MWIR AOTF using the user-defined surface function in ZEMAX is presented, and an AOTF-based MWIR thermal imaging spectrometer is designed and tested successfully. It is based on a MWIR tellurium dioxide (TeO2) AOTF with an operational spectral range from 3.0 to 5.0 mu m and a spectral resolution of 30.8 nm at 3.392 mu m. The optical system employs a three-mirror off-axis afocal telescope with a 2.4 degrees x 2.0 degrees field of view. The operation of the MWIR thermal imaging spectrometer and its image acquisition are computer controlled. Furthermore, the imaging spectrometer is tested in the laboratory, and several experiments are also presented. The experimental results indicate that the proposed AOTF model is efficient, and also show that the imaging spectrometer has the ability to distinguish the real hot target from the interfering target effectively. (C) 2017 Optical Society of America
机译:中波长IR(MWIR)热成像光谱仪广泛应用于遥感,工业检测和军用应用。基于扫描光谱仪的声光可调滤波器(AOTF)具有快速调整,重量轻,无移动部件的优点,使其理想地适用于MWIR应用。然而,在设计AOTF成像光谱仪时,传统方法使用光学设计软件中的折射光栅或并联玻璃模型来模拟AOTF,降低光学系统的成像性能。在本文中,提出了使用Zemax中的用户定义的曲面功能的实际MWIR AOTF的精确模拟模型,并成功设计和测试了基于AOTF的MWIR热成像光谱仪。它基于二氧化碳(TEO2)AOTF,其运行谱范围为3.0至5.0μm,频谱分辨率为30.8nm,3.392μm。光学系统采用三镜子轴外伸缩脚孔,具有2.4度x 2.0度的视野。 MWIR热成像光谱仪及其图像采集的操作是计算机控制的。此外,在实验室测试成像光谱仪,还呈现了几个实验。实验结果表明,所提出的AOTF模型是有效的,并且还表明,成像光谱仪能够有效地将真实热目标与干扰目标区分开来。 (c)2017年光学学会

著录项

  • 来源
    《Applied optics》 |2017年第25期|共8页
  • 作者单位

    Beihang Univ Key Lab Precis Optomechatron Technol Minist Educ Sch Instrumentat Sci &

    Optoelect Engn 37 Xueyuan Rd Beijing 100191 Peoples R China;

    Beihang Univ Key Lab Precis Optomechatron Technol Minist Educ Sch Instrumentat Sci &

    Optoelect Engn 37 Xueyuan Rd Beijing 100191 Peoples R China;

    Beihang Univ Key Lab Precis Optomechatron Technol Minist Educ Sch Instrumentat Sci &

    Optoelect Engn 37 Xueyuan Rd Beijing 100191 Peoples R China;

    Beihang Univ Key Lab Precis Optomechatron Technol Minist Educ Sch Instrumentat Sci &

    Optoelect Engn 37 Xueyuan Rd Beijing 100191 Peoples R China;

    Beihang Univ Key Lab Precis Optomechatron Technol Minist Educ Sch Instrumentat Sci &

    Optoelect Engn 37 Xueyuan Rd Beijing 100191 Peoples R China;

    China Geol Survey 45 Fuwai St Beijing 100137 Peoples R China;

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  • 正文语种 eng
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