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TANG Han, XIA Li-kun, LIU Lian, LIU Yun, LIU Xuan, LIU Yu, ZHANG Run-qi, ZHOU Chun-fen, YANG Kai-yu. Design of cooled lwir large ratio zoom optical system[J]. Chinese Optics. doi: 10.37188/CO.2023-0052
Citation: TANG Han, XIA Li-kun, LIU Lian, LIU Yun, LIU Xuan, LIU Yu, ZHANG Run-qi, ZHOU Chun-fen, YANG Kai-yu. Design of cooled lwir large ratio zoom optical system[J]. Chinese Optics. doi: 10.37188/CO.2023-0052

Design of cooled lwir large ratio zoom optical system

doi: 10.37188/CO.2023-0052
Funds:  Supported by National Key Research and Development Program of China (0701200)
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  • With the improvement of the spatial resolution and area array specifications of the cooled LWIR focal plane detector, the application range of the cooled LWIR thermal imager is becoming wider and wider, and the corresponding optical system needs to be improved to meet the needs of different fields. Compared with the MWIR optical zoom system, the LWIR optical zoom system has fewer available materials and is difficult to athermalize in high and low temperature environments. In this paper, the multi-field optical zoom system is realized by using mechanical compensation zoom technology, and the active compensation athermalization technology is used to make the system image clear from −40 °C to +65 °C, to realize the design of the four-field LWIR optical system with four lenses. The focal lengths of the four fields of view are 25 mm, 109 mm, 275 mm and 400mm, the zoom ratio is 15, the envelope of the optical system is 280 mm(L)×200 mm(W), and the total weight of the optical components is 618 g. The optical system has SWaP-C characteristics such as light weight, high performance, and low cost, and will be widely used in security fields such as auxiliary navigation, search, and tracking.

     

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