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Dual-band Co-aperture Infrared Optical System Design for Irradiance Measurement

机译:用于辐照度测量的双波段共孔径红外光学系统设计

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Irradiance is a basic parameter in radiation measurement and play a big role in the research of radiation source. Since infrared target simulator is difficult to precisely calibrate itself and the irradiance value of standard blackbody is infinitely small,besides,some other objective environment factors like dust,dirty spot,vapour,especially the temperature lay worse effect on common infrared system,so it's crucial to decrease energy deficiency and various aberrations throughout integrated elements of optical system to increase measurement precision. Therefore,in this paper, a relatively precise imaging system is designed to measure the irradiance of the simulator itself-the dual-band co-aperture infrared optical system,it can work well under bad conditions said above,particularly when the target isn't fill up with the FOV(field of view). Generally infrared optical system needs big clear aperture, as for the objective of this system,an improved Cassegrain optical system as the co-aperture can be used to receive middle-wave infrared(MWIR3~5μm) and long-wave infrared(LWIR8~12μm) from standard blackbody radiation.As we all know that Cassegrain system has a satisfying relatively bigger aperture and reflective system has no chromatic aberration problem, a proper obstruction ratio of second lens and a hole in the centre of primary lens of the original system must be changed reasonably .So the radiation with least energy deficiency and aberration can be received successfully now. The two beams depart from the hole of primary lens separated by a coated (reflect MWIR and transmit LWIR film or vice versa) beam splitter, then the two different wavelength waves can be divided into two different optical path and finally received by MWIR and LWIR detectors respectively.The design result shows that the distortions of system are both small and the curves of modulation transfer function (MTF) approach the diffraction limit simultaneously in MWIR( 3~5μm) and LWIR( 8~12μm). The dual-band co-aperture infrared optical system has these advantages with a compact structure, a relatively big f-number, less aberrations and energy deficiency. The standard infrared target simulator can be precisely calibrated.
机译:辐照度是辐射测量中的基本参数,在辐射源的研究中起着重要的作用。由于红外目标模拟器难以精确校准,而且标准黑体的辐照度值无穷小,此外,还有其他一些客观环境因素,例如灰尘,污点,蒸气,尤其是温度对普通红外系统的影响更差,因此至关重要以减少整个光学系统集成元件中的能量不足和各种像差,从而提高测量精度。因此,在本文中,设计了一种相对精确的成像系统来测量模拟器本身的辐照度-双波段共孔径红外光学系统,它可以在上述恶劣条件下很好地工作,尤其是当目标物不适合目标时。充满视野(视野)。通常红外光学系统需要较大的通光孔径,针对该系统的目的,采用改进的卡塞格林光学系统作为光圈,可以接收中波红外(MWIR3〜5μm)和长波红外(LWIR8〜12μm)。众所周知,卡塞格林系统具有令人满意的相对较大的光圈,而反射系统没有色差问题,因此第二个透镜的适当遮挡比和原始系统主透镜中心的孔必须为合理地改变。因此,现在可以成功接收能量不足和像差最小的辐射。两束光束从被镀膜(反射MWIR并透射LWIR膜或反之亦然)的分束器分开的主透镜孔发出,然后将两个不同的波长波分成两个不同的光路,最后被MWIR和LWIR检测器接收设计结果表明,在MWIR(3〜5μm)和LWIR(8〜12μm)中,系统的畸变都较小,并且调制传递函数(MTF)的曲线同时接近衍射极限。双波段共孔径红外光学系统具有结构紧凑,f值较大,像差较小,能量不足等优点。可以精确校准标准的红外目标模拟器。

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