|
|
|
|
|
|
Design of a Lightweight and Compact Self-Aligned PG Imaging
Spectrometer |
WANG Shi-qi, LIU Zi-rui, LI Qin-hao, ZHANG Xue-min* |
School of Remote Sensing and Information Engineering, Wuhan University, Wuhan 430072, China
|
|
|
Abstract Imaging spectrometers are capable of acquiring information in both the spatial and spectral dimensions of a target, and have been widely used in agriculture, industrial production, military and other fields. To comply with the development trend of unmanned aerial vehicle (UAV) lightweight development trend on the imaging spectrometer load miniaturization, lightweight requirements, and at the same time to ensure the high imaging quality, high spectral resolution of the performance needs, a new type of lightweight and small self-aligned PG imaging spectrometer optical system design is proposed. The thesis combines a Dyson-type imaging spectrometer and prism-grating-prism (PGP) features through an in-depth study of existing imaging spectrometer types. The introduction of the image-space telecentric lens at the same time to assume the function ofcollimating lens and imaging lens, greatly reducing the size and quality of the optical system, effectively reducing the cost of processing, assembly and adjustment; the use of prisms and plane reflective grating combination constitutes the PG dispersion module, instead of concave grating, and at the same time retains the ability to correct the spectral bending of the PGP. The designed imaging spectrometer features a slit length of 10 mm, a working wavelength range of 450 to 900 nm, a relative aperture of 1∶3, and a full spectral resolution of better than 0.8 nm when the slit width is 10 μm. The envelope volume of the optical system is only 123 mm×44 mm×44 mm, and the MTF of the full field of view exceeds 0.5 at 100 lp·mm-1 , approaching the diffraction limit. The RMS of each wavelength point array is smaller than that of the Airy spot indicating good imaging quality of the system. Sodium dual line separation can be effectively achieved under laboratory conditions.
|
Received: 2024-11-19
Accepted: 2025-04-28
|
|
Corresponding Authors:
ZHANG Xue-min
|
|
[1] Crocombe R A. Applied Spectroscopy, 2018, 72(12): 1701.
[2] Mouroulis P, Green R O. Optical Engineering, 2018, 57(4): 040901.
[3] Adao T, Hruska J, Pádua L, et al. Remote Sensing, 2017, 9(11): 1110.
[4] MA Jian, ZHANG Jun-qiang, WU Cong-jun, et al(马 健, 张军强, 吴从均, 等). Acta Optica Sinica(光学学报), 2022, 42(23): 2322001.
[5] Transon J, d'andrimont R, Maugnard A, et al. Survey of Current Hyperspectral Earth Observation Applications from Space and Synergies with Sentinel-2[C]. IEEE 2017 19th International Workshop on the Analysis of Multitemporal Remote Sensing Images, 2017: 188.
[6] Wu H W, Haibach F G, Bergles E, et al. Miniaturized Handheld Hyperspectral Imager[C]. Proceedings of SPIE, Conference on Next-Generation Spectroscopic Technologies Ⅶ, 2014, 9101: 91010W.
[7] Green R O, Eastwood M L, Sarture C M, et al. Remote Sensing of Environment, 1998, 65(3): 227.
[8] Lucieer A, Malenovsky Z, Veness T, et al. Journal of Field Robotics, 2014, 31(4): 571.
[9] ZHENG Zhi-zhong, YANG Zhong, XIU Lian-cun, et al(郑志忠, 杨 忠, 修连存, 等). Spectroscopy and Spectral Analysis(光谱学与光谱分析), 2017, 37(7): 2267.
[10] YU Lei(于 磊). Infrared and Laser Engineering(红外与激光工程), 2022, 51(1): 20210940.
[11] Warren D, Gutierrez D, Keim E. Optical Engineering, 2008, 47(10): 103601-1.
[12] FAN Xing-hao, LIU Chun-yu, XU Ming-lin, et al(樊星皓, 刘春雨, 徐明林, 等). Acta Photonica Sinica(光子学报), 2022, 51(12): 1212005.
[13] YANG Jin, ZHANG Rui, PAN Ming-zhong, et al(杨 晋, 张 锐, 潘明忠,等). Optics and Precision Engineering(光学精密工程), 2017, 25(4): 335.
[14] YANG Zeng-peng, TANG Yu-guo, Bayanheshig, et al(杨增鹏, 唐玉国, 巴音贺希格, 等). Acta Optica Sinica(光学学报), 2014, 34(9): 0911003.
|
[1] |
ZHAO Min-jie1, SI Fu-qi1*, ZHOU Hai-jin1, JIANG Yu1, WANG Shi-mei1, ZHAN Kai1, YAN Ge2. Research on Spectral Simulation Method of Space-Borne Limb
Imaging Spectrometer[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2025, 45(09): 2437-2444. |
[2] |
LIN Fang1, 2, LIU Wen-qing1, 2*, WANG Yu3, CHANG Zhen2, ZHANG Quan2, SI Fu-qi2. Dark Current Analysis and Processing Method of Environment
Monitoring Instrument Nadir and Limb[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2025, 45(03): 789-797. |
[3] |
SHEN Yong-cai1, NIU Yu-fan1, KONG De-feng2, YE Yang2*, ZHANG Shou-biao3, LI Da-chuang1, TAN Ming-sheng2, HUANG Yan-qing4, ZHAO Zhi-hao5, ZI Peng-fei3, ZHANG Xiao-hui5, WEN Fei3. Development and Performance Test of a Seya-Namioka Vacuum
Ultraviolet Spectroscopy System[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2024, 44(08): 2158-2165. |
[4] |
LI Xin-quan1, 2,ZHANG Jun-qiang1, 3*,WU Cong-jun1,MA Jian1, 2,LU Tian-jiao1, 2,YANG Bin3. Optical Design of Airborne Large Field of View Wide Band Polarization Spectral Imaging System Based on PSIM[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2024, 44(01): 250-257. |
[5] |
DU Guo-jun, ZHANG Yu-gui, CUI Bo-lun, JIANG Cheng, OU Zong-yao. Spectral Calibration of Hyperspectral Monitor (HSM) on Carbonsat[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2023, 43(05): 1556-1562. |
[6] |
XIE Ying-ke1, 2, WANG Xi-chen2, LIANG Heng-heng2, WEN Quan3. A Near-Infrared Micro-Spectrometer Based on Integrated Scanning
Grating Mirror and Improved Asymmetric C-T Structure[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2023, 43(02): 563-568. |
[7] |
CHEN Yu1, WEI Yong-ming1, WANG Qin-jun1,2*, LI Lin3, LEI Shao-hua4, LU Chun-yan5. Effects of Different Spectral Resolutions on Modeling Soil Components[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2021, 41(03): 865-870. |
[8] |
LI Ming, QIN Kai*, ZHAO Ning-bo, TIAN Feng, ZHAO Ying-jun. Study on the Relationship Between Black Soil Emissivity Spectrum and Total Potassium Content Based on TASI Thermal Infrared Data[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2020, 40(09): 2862-2868. |
[9] |
LI Zhi-wei1, 2, SHI Hai-liang1, 2, LUO Hai-yan1, 2, XIONG Wei1, 2*. Study on the Relationship Between Apodization Function and Signal-to-Noise Ratio of Hyperspectral Spatial Interferogram[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2020, 40(01): 29-33. |
[10] |
LIU Jia-nan1, 2*, CUI Ji-cheng1, YIN Lu1, 2, SUN Ci1, CHEN Jian-jun1, 2, ZHANG Rui1, 2, LIU Jian-li1, 2. Analysis and Design of Pre-Imaging System of Integral Field Imaging Spectrometer Based on Lenslet Array[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2018, 38(10): 3269-3272. |
[11] |
ZHAO Shou-jiang1, YANG Bin1, JIAO Jian-nan2, YANG Peng1, WU Tai-xia3*, WANG Xue-qi1, YAN Lei1*. Using a Polarization Method to Reduce the Vegetation Inversion Error Caused by Strong or Weak Reflection Intensity[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2018, 38(10): 3315-3320. |
[12] |
HAO Li-hua1,2, LU Xiao-dong2, WANG Ming-quan1,2. Research on a Novel Static Imaging Spectrometer[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2018, 38(09): 2971-2975. |
[13] |
ZHANG Quan1, 2, HUANG Shu-hua1*, TIAN Yu-ze1, 2, LU Yue-lin1, 2, ZHAO Min-jie1, ZHOU Hai-jin1, ZHAO Xin1, WANG Yu1, SI Fu-qi1. Noise Analysis and Processing Method of Environment Monitoring Instrument[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2018, 38(09): 2976-2981. |
[14] |
LIU Xiang-lei1,2, LIU Yang-yang1*, FANG Yu1, PEI Lin-lin1, Lü Qun-bo1. Optical Design of Large Relief Large Relative Apertureand High Resolution Modified Dyson Imaging Spectrometer[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2017, 37(12): 3908-3912. |
[15] |
GAO Jian-hua1,2, LIANG Jing-qiu1, Lü Jin-guang1*, LIANG Zhong-zhu1, QIN Yu-xin1, WANG Wei-biao1. A Stepped Mirror Based Temporally and Spatially Modulated Imaging Fourier Transform Spectrometer: Principle and Data Processing[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2017, 37(12): 3932-3939. |
|
|
|
|