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临近空间大气风场星载Fabry-Perot干涉仪设计及仿真结果分析

孙翼然 王后茂 李鹏达 刘玖 王咏梅 付利平 黄聪 宗位国

孙翼然, 王后茂, 李鹏达, 刘玖, 王咏梅, 付利平, 黄聪, 宗位国. 临近空间大气风场星载Fabry-Perot干涉仪设计及仿真结果分析[J]. 空间科学学报. doi: 10.11728/cjss2026.02.2025-0041
引用本文: 孙翼然, 王后茂, 李鹏达, 刘玖, 王咏梅, 付利平, 黄聪, 宗位国. 临近空间大气风场星载Fabry-Perot干涉仪设计及仿真结果分析[J]. 空间科学学报. doi: 10.11728/cjss2026.02.2025-0041
SUN Yiran, WANG Houmao, LI Pengda, LIU Jiu, WANG Yongmei, FU Liping, HUANG Cong, ZONG Weiguo. Design and Simulation Results Analysis of a Spaceborne Fabry–Perot Interferometer for the Near-Space Atmospheric Wind Field (in Chinese). Chinese Journal of Space Science, 2026, 46(2): 1-10 doi: 10.11728/cjss2026.02.2025-0041
Citation: SUN Yiran, WANG Houmao, LI Pengda, LIU Jiu, WANG Yongmei, FU Liping, HUANG Cong, ZONG Weiguo. Design and Simulation Results Analysis of a Spaceborne Fabry–Perot Interferometer for the Near-Space Atmospheric Wind Field (in Chinese). Chinese Journal of Space Science, 2026, 46(2): 1-10 doi: 10.11728/cjss2026.02.2025-0041

临近空间大气风场星载Fabry-Perot干涉仪设计及仿真结果分析

doi: 10.11728/cjss2026.02.2025-0041 cstr: 32142.14.cjss.2025-0041
基金项目: 国家重点研发计划项目资助(2022YFB3901800, 2022YFB3901802)
详细信息
    作者简介:
    • 孙翼然 男, 2000年出生, 中国科学院国家空间科学中心硕士研究生, 主要研究方向为空间光学遥感技术. E-mail: sunyiran22@mails.ucas.ac.cn
    通讯作者:
    • 王后茂 男, 1986年出生, 现为国家空间科学中心副研究员, 主要研究方向为大气气溶胶和风场反演及交叉定标等. E-mail: hmwang@nssc.ac.cn
  • 中图分类号: P356

Design and Simulation Results Analysis of a Spaceborne Fabry–Perot Interferometer for the Near-Space Atmospheric Wind Field

  • 摘要: Fabry-Perot干涉仪(FPI)是较为重要、广泛应用的临近空间风场探测手段, 为弥补中国在天基FPI测风方面的空白, 中国科学院国家空间中心研发了一种星载FPI测风仪. 对此星载FPI测风仪的光学、结构与温控设计、光学仿真及结果进行分析. 根据宽波段的探测需求, 分析光学设计, 并对其成像系统进行像质评估. 基于光学仿真数据, 对星载FPI仪器进行风速反演与精度分析, 在557.7 nm和762.0 nm两个波段的风速误差分别为-1.722 m·s–1和-2.3672 m·s–1, 表明该星载仪器设计符合测风要求. 根据仪器的结构设计特点和成像部分温控方案, 提出一种平移式滤光片切换装置, 采用梯形螺杆加微型减速步进电机或微型直线电机驱动. 进而探讨了仪器核心组件标准具的控温精度与测风误差的关系, 采用了主被动相结合的设计, 降低温度变化对结果的影响, 并进行了仿真验证.

     

  • 图  1  FPI 系统测风原理

    Figure  1.  FPI System configuration

    图  2  FPI 系统光路

    Figure  2.  Optical path of the FPI system

    图  3  成像系统 MTF 图

    Figure  3.  Imaging system MTF diagram

    图  4  成像系统点列图

    Figure  4.  Imaging system spot diagrams

    图  5  FPI 成像仿真结果

    Figure  5.  FPI imaging simulation results

    图  6  镜筒结构

    Figure  6.  Structure of the lens tube

    图  7  滤光片切换器结构

    Figure  7.  Structure diagram of the filter switcher

    图  8  0.05 K 温度变化下的形变仿真结果

    Figure  8.  Deformation simulation results at 0.05 K temperature change

    图  9  温控流程

    Figure  9.  Temperature control flow chart

    表  1  风速反演结果

    Table  1.   Wind speed inversion results

    序号 波段λ/nm 风速真值v0/(m·s–1) 风速反演值v1/(m·s–1) 偏差Δv/(m·s–1)
    1 557.7 50 48.2780 –1.722
    2 762.0 40 37.6328 –2.3672
    下载: 导出CSV

    表  2  标准具相关材料物性

    Table  2.   Etalon related material properties

    材料密度ρ/(kg·m–3)热膨胀率α/( K–1)泊松比ν弹性模量E/GPa热导率λ /(W·m–1·K–1)
    殷瓦32-5合金81506.3×10–70.2314413.9
    康宁熔石英玻璃22005.2×10–70.16731.38
    ZERODUR玻璃25307×10–90.2490.31.46
    下载: 导出CSV

    表  3  标准具工作表面的位移值

    Table  3.   Displacement values for the etalon's work surface

    位置 r =0 mm r=10 mm r=20 mm r=30 mm r=40 mm r=50 mm
    前镜片工作表面位移/nm –0.0298 –0.0274 –0.0220 –0.0172 –0.0182 –0.0262
    后镜片工作表面位移/nm –0.0273 –0.0344 –0.0344 –0.0385 –0.0369 –0.0273
    腔长变化量Δd/nm –0.0025 0.0069 0.0124 0.0214 0.0187 0.0011
    下载: 导出CSV
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出版历程
  • 收稿日期:  2025-03-18
  • 修回日期:  2025-04-14
  • 网络出版日期:  2025-09-17

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