脉冲式激光多普勒测速仪的理论与仿真分析
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中国人民解放军国防科技大学

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TN2

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湖南省自然科学基金项目(2021JJ30782)


theoretical analyses and simulations of the pulsed LDV
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    摘要:

    连续式激光多普勒测速仪(laser Doppler velocimeter, LDV)受连续光激光器功率低、光学系统衍射等因素的影响,限制了其在低空测速当中的应用。通过引入“虚拟距离”对大气分层模型进行拓展,建立了脉冲式LDV的时域回波信号模型,仿真结果表明,脉冲式LDV可通过累积硬目标回波信号速度反演,而且脉冲式LDV不受空间分辨率的限制,可以利用更长的激光脉宽进行探测,理论上验证了脉冲式LDV利用长脉冲进行高精度测速的可行性,为未来脉冲式LDV进行原理实验验证奠定了理论基础。脉冲式LDV可以探测5km及更远目标散射的回波信号,极大拓展了LDV的工作距离范围,使得LDV可以应用在低空飞行载体组合导航、航天器行星表面着陆导航等需要远距离高精度速度测量的场景。

    Abstract:

    Continuous-wave laser Doppler velocimeters (LDV) are limited in low-altitude velocity measurement due to factors such as the low power of continuous-wave lasers and optical system diffraction. By introducing the concept of "virtual distance" to expand the feuillet? model, the time-domain echo signal model for pulsed LDV has been established. Simulation results indicate that pulsed LDV can perform velocity measurement through the accumulation of hard target echo signals. Pulsed LDV can also utilize longer laser pulse widths for detection without restricted by spatial resolution. this paper verifies the feasibility of high-precision velocity measurement using long pulses with pulsed LDV, laying a theoretical foundation for future experimental validation of the pulsed LDV. Pulsed LDV is capable of detecting echo signals scattered from targets at 5 km and beyond, significantly extending the working distance range of LDV. This makes LDV applicable in integrated navigation of low-altitude aircrafts and planetary surface landing navigation for spacecrafts.

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  • 收稿日期:2022-12-13
  • 最后修改日期:2025-01-16
  • 录用日期:2023-02-20
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