常凌颖, 张强, 邱跃洪, 张荣. 宽光谱实入瞳远心中继光学系统设计[J]. 红外与激光工程, 2021, 50(10): 20210091. DOI: 10.3788/IRLA20210091
引用本文: 常凌颖, 张强, 邱跃洪, 张荣. 宽光谱实入瞳远心中继光学系统设计[J]. 红外与激光工程, 2021, 50(10): 20210091. DOI: 10.3788/IRLA20210091
Chang Lingying, Zhang Qiang, Qiu Yuehong, Zhang Rong. Design of telecentric relay optical system with broadband and real entrance pupil[J]. Infrared and Laser Engineering, 2021, 50(10): 20210091. DOI: 10.3788/IRLA20210091
Citation: Chang Lingying, Zhang Qiang, Qiu Yuehong, Zhang Rong. Design of telecentric relay optical system with broadband and real entrance pupil[J]. Infrared and Laser Engineering, 2021, 50(10): 20210091. DOI: 10.3788/IRLA20210091

宽光谱实入瞳远心中继光学系统设计

Design of telecentric relay optical system with broadband and real entrance pupil

  • 摘要: 红外光谱成像系统、光场成像系统、光学显微系统、偏振干涉成像系统、复眼成像系统、环带式全景光学系统、多尺度成像系统及头戴式增强显示系统等光学系统中,通常需要中继光学系统来实现光路衔接、配曈、偏转等。研究了现有中继光学系统结构,介绍了光阑前置即具有实入曈的像方远心离轴三反光学系统的设计方法及自由曲面的描述方法,完成了满足设计参数的具有实入瞳的远心中继光学系统仿真设计,系统各镜采用XY多项式描述的自由曲面离轴三反光学系统结构。CODEV仿真设计结果表明,在工作谱段0.4~5.0 μm、焦距400 mm、F数3、视场角2ω=8°下,系统MTF(Modulation Transfer Function)接近于衍射极限,畸变小于1%,成像质量良好。

     

    Abstract: The relay optical system was widely used in optical systems such as infrared spectral imaging system, light field imaging system, optical microscopy system, polarization interference imaging system, compound eye imaging system, ring-belt panoramic optical system, multi-scale imaging system and head-mounted enhanced display system, etc, which can link up, match pupil and deflect optical systems. The structures of the existing relay optical system were studied. The design method of telecentric off-axis three-mirror optical system with front aperture and the description method of free-form surface were introduced. According to the design parameters, the telecentric relay optical system with broadband and real entrance pupil was completed. The system was an off-axis three-mirror optical system structure, and each mirror was a free-form surface described by XY polynomial. The results of CODEV software simulation show that the MTF of the system is close to the diffraction limit, the distortion is less than 1%, and the imaging quality is good with the working spectral range of 0.4-5.0 μm, f'=400 mm, F/3 and 2ω=8°.

     

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