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Design of polarization imaging optical system with divided aperture

机译:分孔偏振成像光学系统设计

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As a new kind of optical imaging technology, polarimetric imaging can be able to identify the target that may be difficult to conventional ones and can reduce the influence of stray and complex environment. It can efficiently increase the detection dimension of the information and increase capability of target imaging and recognition by imaging the polarization properties of the optical wave. The dissertation researches a type of simultaneous polarization imaging optical system with divided aperture. This system is adopted the identification system of polarization and morphological feature, which can improve the ability of space target classification and recognition. It also can be used as a space-based space target imaging system, which can be used for the classification and recognition of space target. Polarization optical system is adopted the structure mode of two-mirror reflecting systems and field correction mirror, pupil division and four zoning registration scheme of array CCD detector. The system technical parameters are F#/12.5, EFL 1500mm, FOV 0.47°. The size of CCD pixel is 12μm×12μm. The system can detect the light of 0°/45°/90° and visible light for 450-850 nm spectrum. It reached the conclusion that optical system imaging quality is close to the diffraction limit at the Nyquist frequency 41.70lp/mm though simulation test, the system can meet the imaging requirements.
机译:作为一种新型光学成像技术,极化成像可以识别可能难以传统的目标,并且可以降低流浪和复杂环境的影响。它可以有效地增加信息的检测维度,并通过对光波的偏振特性进行成像来增加目标成像和识别的能力。本文研究了一种分孔的同时偏振成像光学系统。采用该系统采用偏振和形态特征的识别系统,可以提高空间目标分类和识别能力。它还可以用作基于空间的空间目标成像系统,其可用于空间目标的分类和识别。采用偏振光系统的双镜式反射系统和现场校正镜,阵列CCD检测器的四个分区配准方案的结构模式。系统技术参数是F#/ 12.5,EFL 1500mm,FOV 0.47°。 CCD像素的大小为12μm×12μm。该系统可以检测0°/ 45°/ 90°和可见光的光,可见450-850nm光谱。它得出的结论是,光学系统成像质量靠近奈奎斯特频率41.70LP / mm的衍射极限,虽然仿真测试,系统可以满足成像要求。

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