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Progress of Fengyun Meteorological Satellite Integrated Observation System (2024–2026)

WANG Jinsong GUAN Min XU Na JIA Shuze FANG Meng ZONG Weiguo YAO Yixin ZHANG Yu LIU Chang XIAN Di FAN Cunqun

WANG Jinsong, GUAN Min, XU Na, JIA Shuze, FANG Meng, ZONG Weiguo, YAO Yixin, ZHANG Yu, LIU Chang, XIAN Di, FAN Cunqun. Progress of Fengyun Meteorological Satellite Integrated Observation System (2024–2026). Chinese Journal of Space Science, 2026, 46(4): 1-17 doi: 10.11728/cjss2026.04.2026-yg17
Citation: WANG Jinsong, GUAN Min, XU Na, JIA Shuze, FANG Meng, ZONG Weiguo, YAO Yixin, ZHANG Yu, LIU Chang, XIAN Di, FAN Cunqun. Progress of Fengyun Meteorological Satellite Integrated Observation System (2024–2026). Chinese Journal of Space Science, 2026, 46(4): 1-17 doi: 10.11728/cjss2026.04.2026-yg17

Progress of Fengyun Meteorological Satellite Integrated Observation System (2024–2026)

doi: 10.11728/cjss2026.04.2026-yg17 cstr: 32142.14.cjss.2026-yg17
Funds: Supported by NSFC under grant 42274217 and China Meteorological Administration “Space Weather Monitoring and Alerting” Key Innovation Team (CMA2024 ZD01)
More Information
    Author Bio:

    Professor, Director-General of the National Satellite Meteorological Center (National Center for Space Weather) and Chief Designer of China’s Fengyun meteorological satellite program. His research interests include satellite meteorology and space physics. He serves as Chair of the Satellite Meteorology Committee of the Chinese Meteorological Society and a member of the Scientific Advisory Panel of the World Meteorological Organization (WMO). He has been recognized through major national talent programs and has received several honors, including the China Youth Science and Technology Award, the Jeoujang Jaw Outstanding Science Award, and the Special Government Allowance from the State Council of China. E-mail: wangjs@cma.gov.cn

  • Figure  1.  Refined spectra of different detection targets for GAS-II (a-Cloud area, b-Land, c-Ocean). (a) Regional monitoring data acquired by GAS-II on global orbits. (b) High-resolution spectra (758–772 nm) for cloud, land, and ocean targets

    Figure  2.  X1.1 class solar flare observed by FY4 C/SUVI at wavelengths of 94 Å (a), 171 Å (b), 211 Å (c) and 304 Å (d) at 20:50 UTC on 30 June 2026

    Figure  3.  FY Constellation

    Figure  4.  Fengyun Smart Brain: an intelligent command and decision platform for multi-satellite integrated operation control, satellite-ground monitoring, data quality evaluation, and application services

    Figure  5.  Spatial distribution of monthly average AOD retrievals obtained from MERSI-II during Jan. 2022 (a), Mar. 2022 (b), Jul. 2022 (c), and Nov. 2021 (d)

    Figure  6.  Spatial distributions of the AMSR2 all-weather SSWS (left column), MWRI SSWS retrieved by the LWDNN (middle column), and SMAP SSWS (right column) for typhoon MAWAR

    Figure  7.  Architecture of the TIEGCM-based inversion model for end-to-end mapping from observable data to latent ionosphere-thermosphere state variables

    Figure  8.  4 h lead time nowcasting comparison of multiple models for the severe convective extreme rainstorm event in the Beijing-Tianjin-Hebei region on 29 July 2023 associated with Typhoon Doksuri

    Figure  9.  Statistics of satellite data archiving from 1988 to 2025

    Figure  10.  3 D temperature structure of Typhoon Bolaven

    Figure  11.  Water reduction of the Dongting Lake induced by high temperature and drought monitored by FY-3D on 14 June (a) and 5 September (b) in 2022

    Figure  12.  Schematic diagram of Fengyun AI large model

    Table  1.   FY-3H remote sensing instruments

    Instruments full name Acronym Status
    1. Medium Resolution Spectral Imager-III MERSI-III Inherited
    2. Hyperspectral Infrared Atmospheric Sounder-II HIRAS-II
    3. Micro-Wave Temperature Sounder-III MWTS-III
    4. Micro-Wave Humidity Sounder-II MWHS-II
    5. Micro-Wave Radiation Imager-II MWRI-II
    6. GNSS Radio Occultation Sounder-II GNOS-II
    7. Ionospheric PhotoMeter-II IPM-II
    8. Greenhouse-gases Absorption Spectrometer-II GAS-II New
    9. Wide-field Auroral Imager-II WAI-II Improved
    下载: 导出CSV

    Table  2.   Remote Sensing Instruments on FY-4C

    Instrument Acronym Status
    1. Advanced Geostationary Radiation Imager AGRI Improved
    2. Geostationary Interferometric Infrared Sounder GIIRS
    3. Lightning Mapping Imager LMI
    4. Solar extreme-UltraViolet Imager SUVI New
    5. Multi-band ionosphere Ultraviolet Spectral Imager MUSI
    6. Solar X-ray and extreme-Ultraviolet Spectral fluxmeter SXUS
    下载: 导出CSV
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  • 收稿日期:  2026-05-20
  • 网络出版日期:  2026-07-26

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