• Acta Photonica Sinica
  • Vol. 49, Issue 11, 45 (2020)
Hai-feng ZHANG1、2, Ming-liang LONG1、*, Hua-rong DENG1、2, Zhi-bo WU1、2, Shao-yu CHENG4, Pu LI1, and Zhong-ping ZHANG1、2、3
Author Affiliations
  • 1Shanghai Astronomical Observatory, Chinese Academy of Sciences, Shanghai200030, China
  • 2Key Laboratory of Space Object and Debris Observation, Chinese Academy of Sciences, Nanjing10008, China
  • 3State Key Laboratory of Precision Spectroscopy, East China Normal University, Shanghai200062, China
  • 4Shanghai University, Shanghai200, China
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    DOI: 10.3788/gzxb20204911.1149004 Cite this Article
    Hai-feng ZHANG, Ming-liang LONG, Hua-rong DENG, Zhi-bo WU, Shao-yu CHENG, Pu LI, Zhong-ping ZHANG. Development and Application for Ground-based Space Debris Laser Ranging (Invited)[J]. Acta Photonica Sinica, 2020, 49(11): 45 Copy Citation Text show less

    Abstract

    Space debris is increasing rapidly owing to the rapid development of aerospace technology, which occupies limited orbital resources and threatens the safety of spacecraft in orbit, even the falling of space debris also poses a serious scare to people. The laser ranging has the characteristics of short wavelength, small divergence angle, good direction, good monochromaticity, strong anti-interference and so on. It can significantly improve the accuracy of space debris orbit determination. This paper makes a more comprehensive theoretical analysis for the space debris laser ranging. The technological development process of space debris laser ranging is described from the aspects of laser mode, signal detection and reception and so on. The development of the space debris laser ranging technology of the kilohertz repetition rate of pulse bursts mode and the 100 kilohertz pulse bursts transceiver alternate mode is discussed, and daytime laser measurement techniques of space debris are explained. Ultra-high repetition rate laser ranging technology would be applied in space debris laser ranging, it provides a new method for the further improvement of space debris laser ranging capabilities.
    R=(t2-t1-T0)c2(1)

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    n0=16π2ληqhcE0ArAsθt2θs2R4T2KtKrα(2)

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    PG=σρE0KrT4R2cosβ(3)

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    n0=ληqhcE0σρAs4πθt2R4T2KtKrαcosβ(4)

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    S=64Arπθt2σρ(5)

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    P(0,n1+n2)=1-e-n1-n2(6)

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    P(0,n0)=e-(n1+n2)(1-e-n0)(7)

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    D=fe-(n1+n2)1-exp-ληqhc×E0Arρσcosθπθt2R4×T2×ηt×ηr×α(8)

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    ΔR1=(Δt2-Δt1-ΔT)C2(9)

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    Hai-feng ZHANG, Ming-liang LONG, Hua-rong DENG, Zhi-bo WU, Shao-yu CHENG, Pu LI, Zhong-ping ZHANG. Development and Application for Ground-based Space Debris Laser Ranging (Invited)[J]. Acta Photonica Sinica, 2020, 49(11): 45
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