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TLE轨道反演大气密度精度评估

任廷领 罗冰显 苗娟 王荣兰 王昕 刘四清

任廷领, 罗冰显, 苗娟, 王荣兰, 王昕, 刘四清. TLE轨道反演大气密度精度评估[J]. 空间科学学报. doi: 10.11728/cjss2025.03.2024-0060
引用本文: 任廷领, 罗冰显, 苗娟, 王荣兰, 王昕, 刘四清. TLE轨道反演大气密度精度评估[J]. 空间科学学报. doi: 10.11728/cjss2025.03.2024-0060
REN Tingling, LUO Bingxian, MIAO Juan, WANG Ronglan, WANG Xin, LIU Siqing. Accuracy Assessment of the TLE-derived Orbital Atmospheric Densities (in Chinese). Chinese Journal of Space Science, 2025, 45(3): 717-728 doi: 10.11728/cjss2025.03.2024-0060
Citation: REN Tingling, LUO Bingxian, MIAO Juan, WANG Ronglan, WANG Xin, LIU Siqing. Accuracy Assessment of the TLE-derived Orbital Atmospheric Densities (in Chinese). Chinese Journal of Space Science, 2025, 45(3): 717-728 doi: 10.11728/cjss2025.03.2024-0060

TLE轨道反演大气密度精度评估

doi: 10.11728/cjss2025.03.2024-0060 cstr: 32142.14.cjss.2024-0060
基金项目: 中国科学院国防科技重点实验室基金(CXJJ-22S031)和中国科学院国家空间科学中心攀登项目(E1PD40017S)共同资助
详细信息
    作者简介:
    • 任廷领 男, 1990年10月出生于山东省聊城市, 现为中国科学院国家空间科学中心助理研究员, 主要研究方向为热层大气密度反演与模型修正. E-mail: rentl@nssc.ac.cn
    通讯作者:
    • 罗冰显 男, 1981年11月出生, 现为中国科学院国家空间科学中心研究员、博士生导师, 中国科学院大学岗位教授, 国家青年人才计划获得者, 主要研究方向为空间天气和空间环境的预报与应用. E-mail: luobx@nssc.ac.cn
  • 中图分类号: P351

Accuracy Assessment of the TLE-derived Orbital Atmospheric Densities

  • 摘要: 利用CHAMP和GRACE-A卫星的TLE数据进行轨道大气密度反演, 并以高精度加速度仪密度作为基准计算反演密度误差, 同时与NRLMSISE-00, JB2008, MSIS2.0大气模式误差进行对比, 给出了TLE反演误差相对大气模式误差改善率的量化结果, 为TLE反演密度的准确性及实际应用提供了一定的理论支撑. 选取的TLE数据覆盖2002-2017年, 分别计算了两类密度反演值: TLE平均密度和TLE修正密度. 前者为时间分辨率为3 d的平均轨道大气密度, 该值不依赖于大气模式; 后者则是通过对大气模式进行修正得到的轨道原位处的大气密度. 结果表明, 在所分析的时间范围内, TLE平均密度的整体平均误差小于5%, 标准差小于8%; TLE修正密度在地磁平静期误差最小, 相对于大气模式的误差改善率超过80%.

     

  • 图  1  ROM模式精度分析. (a) MSIS00模式的全球分布, (b) 20阶ROM模型的全球密度分布, (c) ROM全球分布误差, (d)~(f) ROM误差随阶数、高度和时间的变化

    Figure  1.  Accuracy of the Reduced Order Model (ROM). (a) Global distribution of MSIS00 densities, (b) global density distribution of the 20th-order ROM Model, (c) global distribution of ROM error, (d)~(f) variation of errors with orders, altitude and time, respectively

    图  2  加速仪密度与HASDM密度对比

    Figure  2.  Comparison of accelerometer density and HASDM density

    图  3  CHAMP卫星TLE数据反演密度与模式密度误差对比

    Figure  3.  Comparison between TLE-derived and model density errors for CHAMP

    图  4  GRACE-A卫星TLE数据反演密度与模式密度误差对比

    Figure  4.  Comparison between TLE-derived and model errors for GRACE-A

    图  5  2002-2017年不同地磁条件事例筛选. 共筛选239个磁静日、 364个小磁暴日、73个中磁暴日和10个大磁暴日

    Figure  5.  Selection of cases with different geomagnetic conditions from 2002 to 2017. 239 geomagnetic quiet days, 364 minor storm days, 73 middle storm days and 10 major storm days are selected

    图  6  CHAMP卫星TLE修正密度误差与模式误差的对比

    Figure  6.  Comparison between TLE-calibrated and model errors for CHAMP

    图  7  GRACE-A卫星TLE修正密度误差与模式误差的对比

    Figure  7.  Comparison between TLE-calibrated and model errors for GRACE-A

    表  1  ROM模式网格化设置

    Table  1.   Gridding settings of ROM model

    项目 范围 分辨率
    纬度/(°) [–90, 90] 10
    经度/(°) [–180, 180] 10
    高度/km [200, 600] 20
    时间/year [2002, 2020] 1
    下载: 导出CSV

    表  2  CHAMP卫星TLE修正密度误差改善率

    Table  2.   Ratio of the CHAMP TLE-calibrated density error improvement with that by models

    类型 $ r\left({\varepsilon }_{\mathrm{t}\mathrm{l}\mathrm{e}} < {\varepsilon }_{\mathrm{M}\mathrm{S}\mathrm{I}\mathrm{S}00}\right)/( $%) $ r\left({\varepsilon }_{\mathrm{t}\mathrm{l}\mathrm{e}} < {\varepsilon }_{\mathrm{M}\mathrm{S}\mathrm{I}\mathrm{S}2.0}\right)/( $%) $ r\left({\varepsilon }_{\mathrm{t}\mathrm{l}\mathrm{e}} < {\varepsilon }_{\mathrm{J}\mathrm{B}2008}\right)/( $%)
    磁静日 88.6 83.2 75.6
    小磁暴 77.6 75.4 62.3
    中磁暴 67.5 87.5 62.5
    大磁暴 75.0 62.5 62.5
    下载: 导出CSV

    表  3  GRACE-A卫星TLE修正密度误差改善率

    Table  3.   Ratio of the GRACE-A TLE-derived density error improvement with that by models

    类型 $ r\left({\varepsilon }_{\mathrm{t}\mathrm{l}\mathrm{e}} < {\varepsilon }_{\mathrm{M}\mathrm{S}\mathrm{I}\mathrm{S}00}\right)/( $%) $ r\left({\varepsilon }_{\mathrm{t}\mathrm{l}\mathrm{e}} < {\varepsilon }_{\mathrm{M}\mathrm{S}\mathrm{I}\mathrm{S}2.0}\right)/( $%) $ r\left({\varepsilon }_{\mathrm{t}\mathrm{l}\mathrm{e}} < {\varepsilon }_{\mathrm{J}\mathrm{B}2008}\right)/( $%)
    磁静日 80.0 71.3 53.2
    小磁暴 76.8 66.3 54.9
    中磁暴 57.8 56.3 67.2
    大磁暴 80.0 40.0 40.0
    下载: 导出CSV
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  • 收稿日期:  2024-04-18
  • 修回日期:  2024-08-20
  • 网络出版日期:  2024-09-09

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