红外与激光工程, 2016, 45 (4): 0401001, 网络出版: 2016-05-11   

空间碎片激光探测成像通信一体化技术探讨

Discussion of the laser ranging with polarization spectral imaging observations and communication technology for space debris
作者单位
长春理工大学 空地激光通信国防重点学科实验室,吉林 长春 130022
引用该论文

姜会林, 付强, 张雅琳, 江伦. 空间碎片激光探测成像通信一体化技术探讨[J]. 红外与激光工程, 2016, 45(4): 0401001.

Jiang Huilin, Fu Qiang, Zhang Yalin, Jiang Lun. Discussion of the laser ranging with polarization spectral imaging observations and communication technology for space debris[J]. Infrared and Laser Engineering, 2016, 45(4): 0401001.

参考文献

[1] 吴连大. 人造卫星的空间碎片的轨道和探测[M]. 北京: 中国科学技术出版社, 2011.

    Wu Lianda. Orbital and Detection on Space Debris of Man-made[M]. Beijing: Chinese Technology Press, 2011. (in Chinese)

[2] Kervin P W, Africano J L, Sydney P F, et al. Small satellite characterization technologies applied to orbital debris[J]. Advances in Space Research, 2005, 35: 1214-1225.

[3] Bradley M Ratli. Detection and tracking of RC model aircraft in LWIR microgrid polarimeter data[C]//SPIE, 2011, 8160: 816002.

[4] 王国语.空间碎片国际机制发展趋势分析[J]. 航天器环境工程, 2015, 32(2): 147-149.

    Wang Guoyu. Analysis of the international consultation mechanism for space debris andits development[J]. Spacecraft Environment Engineering, 2015, 32(2): 147-149. (in Chinese)

[5] Kocak D M. A focus on recent developments and trends in underwater imaging[J]. MTS Journal, 2008(42): 52-67.

[6] Einav N, Sarit S, Schechner Y Y. Skyless polarimetric calibration and visibility enhancement[J]. Optics Express, 2009, 17(2): 472-493.

[7] Miles Q Topping, Joel E Pfeiffer, Andrew W Sparks, et al.Advanced airborne hyperspecral imaging system(AAHIS)[C]//SPIE, 2002, 4816: 1-11.

[8] 唐轶峻, 姜晓军, 魏建彦, 等. 高轨空间碎片光电观测技术综述[J]. 宇航学报, 2008, 29(4): 1094-1097.

    Tang Yijun, Jiang XiaoJun, Wei Jianyan, et al. Review of optical observations of high apogee space debris[J]. Journal of Astronautics, 2008, 29(4): 1094-1097. (in Chinese)

[9] Sellar R G, Rafert J B. Effects of aberrations on spatially modulated Fourier transform spectrometers[J]. Optical Engineering, 1994, 33(9): 3087-3092.

[10] Smith W H, Hammer P D. Digital array scanned interferometer: sensors and results[J]. Applied Optics, 1996, 35(16): 2902-2909.

[11] Hammer P D, Johnson L F, Strawa A W, et al. Surface reflectance mapping using interferometric spectral imagery from a remotely piloted aircraft[J]. IEEE Transactions on Geoscience and Remote Sensing, 2001, 39(11): 2499-2506.

[12] Lucey P G, Horton K A, Williams T J, et al. SMIFTS: a cryogenically cooled, spatially modulated imaging infrared interferometer spectrometer[C]//SPIE, 1993, 1937: 130-141.

[13] 焦建超, 郑国宪, 苏云. 基于空间站平台的空间碎片探测与清除技术[J]. 国际太空, 2015(4): 53-56.

    Jiao Jianchao, Zheng Guoxian, Su Yun. Space debris detection and removal based on space station platform[J]. Space International, 2015(4): 53-56. (in Chinese)

[14] 王虎, 罗建军. 空间碎片多光谱探测相机光学系统设计[J]. 红外与激光工程, 2014, 43(4): 1188-1189.

    Wang Hu, Luo Jianjun. Optical system design of multi-spectral camera for space debris[J]. Infrared and Laser Engineering, 2014, 43(4): 1188-1189. (in Chinese)

[15] 金小龙, 唐轶峻, 隋成华. 空间碎片光谱特性获取与分析方法研究[J]. 空间科学学报, 2014(1): 95-98.

    Jin Xiaolong, Tang Yijun, Sui Chenghua. A review on the acquisition and analysis methods of spectral characteristics of space debris[J]. Chin J Space Set, 2014(1): 95-98. (in Chinese)

[16] 孙荣煜. 空间碎片光学观测中若干问题研究[J]. 天文学报, 2015, 56: 90-93.

    Sun Rongyu. Research on optical observation for space debris[J]. Acta Astronomica Sinica, 2015, 56: 90-93. (in Chinese)

[17] 姜会林, 江轮, 付强, 等. 空间碎片偏振光谱成像探测技术研究[J]. 深空探测学报, 2015(3): 272-277.

    Jiang Huilinn, Jiang Lun, Fu Qiang, et al. The discussion of the polarization spectral imaging observations technology with space debris[J]. Journal of Deep Space Exploration, 2015(3): 272-277. (in Chinese)

[18] 冯其波. 光学测量技术与应用[M]. 北京: 清华大学出版社, 2008: 143-146.

    Feng Qibo. Optical Measurement Technology and Application[M]. Beijing: Tsinghua University Press, 2008: 143-146. (in Chinese)

[19] 蓝朝桢. 空间目标天基光学观测系统建模与探测能力分析[D]. 郑州: 解放军信息工程大学, 2009.

    Lan Chaozhen. Analysis of space-based optical observation system modeling and detection ability[D]. Zhengzhou: The PLA Information Engineering University, 2009. (in Chinese)

[20] 查为懿. 超分辨光学系统成像原理与技术[D]. 北京: 北京理工大学, 2015.

    Zha Weiyi. Imaging principle and technologies of rhe super-resolving optical system[D]. Beijing: Beijing Institute of Techonology, 2015. (in Chinese)

[21] 杨学峰. 遥感图象频域和空域超分辨重建技术研究[D]. 哈尔滨: 哈尔滨工业大学, 2011.

    Yang Xuefeng. Research on super-resolution reconstruction technology in frequency and spatial domain for demote sensing images[D]. Harbin: Harbin Inititule of Technolgy, 2011. (in Chinese)

[22] 姜会林, 佟首峰. 空间激光通信技术与系统[M]. 北京: 国防工业出版社, 2010: 82.

    Jiang Huilin, Tong Shoufeng. The Technologies and Systems of Space Laser Communication[M]. Beijing: National Defence Industry Press, 2010: 82. (in Chinese)

姜会林, 付强, 张雅琳, 江伦. 空间碎片激光探测成像通信一体化技术探讨[J]. 红外与激光工程, 2016, 45(4): 0401001. Jiang Huilin, Fu Qiang, Zhang Yalin, Jiang Lun. Discussion of the laser ranging with polarization spectral imaging observations and communication technology for space debris[J]. Infrared and Laser Engineering, 2016, 45(4): 0401001.

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