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Article

Intercomparison, Fusion and Application of FY-3E/WindRAD and HY-2B/SCA Ocean Surface Wind Products for Tropical Cyclone Monitoring

1
Shanghai Meteorological Information and Technical Support Center, Shanghai Meteorological Service, Shanghai 200030, China
2
Shanghai Ecological Meteorology and Satellite Remote Sensing Center, Shanghai Meteorological Service, Shanghai 200030, China
3
Department of Atmospheric and Oceanic Sciences, Fudan University, Shanghai 200438, China
4
Shanghai Typhoon Institute of China Meteorological Administration, Shanghai 200030, China
5
Shanghai Key Laboratory of Meteorology and Health, Shanghai Meteorological Service, Shanghai 200030, China
*
Author to whom correspondence should be addressed.
Remote Sens. 2025, 17(23), 3809; https://doi.org/10.3390/rs17233809
Submission received: 30 September 2025 / Revised: 16 November 2025 / Accepted: 17 November 2025 / Published: 24 November 2025
(This article belongs to the Special Issue Remote Sensing Applications in Ocean Observation (Third Edition))

Abstract

Ocean surface wind vector (OWV) is a key variable for ocean remote sensing and tropical cyclone (TC) monitoring. This study presents the first comprehensive intercomparison of Ku-band OWV products from FY-3E/WindRAD and HY-2B/SCA scatterometers using full-year data from 2022 (583,805 spatiotemporal collocations), with both sensors sampling the morning–evening local-time sector in sun-synchronous orbits. Results indicate strong agreement in wind speed (R = 0.95; mean bias −0.47 m/s; RMSE 1.30 m/s) and wind direction (mean bias 0.22°; std 28.13°) for wind speeds ≥ 3.4 m/s (Beaufort scale B3 and above), with the highest consistency across Beaufort scale 3–8 (B3–B8); however, at wind speeds greater than 20.8 m/s (B9) the bias increases. A fusion leveraging FY-3E’s fine resolution and HY-2B’s wide coverage is implemented and applied to Super Typhoon Hinnamnor (2022), enhancing the spatial coverage and structural detail of TC winds. Quadrant 34 kt wind radii (R34) are estimated from the fused wind fields and evaluated against the best-track data from the Joint Typhoon Warning Center (JTWC), showing close agreement during compact, symmetric TC stages but larger differences during structural reorganization. Overall, the findings confirm inter-satellite consistency for the two Chinese scatterometers and demonstrate the practical value of a multi-source fusion approach that benefits TC monitoring, wind radii estimation, and marine weather services.
Keywords: ocean surface wind vector (OWV); FY-3E WindRAD; HY-2B SCA; scatterometer; intercomparison and validation; multi-satellite fusion; tropical cyclone monitoring; wind radii estimation; R34; ocean remote sensing ocean surface wind vector (OWV); FY-3E WindRAD; HY-2B SCA; scatterometer; intercomparison and validation; multi-satellite fusion; tropical cyclone monitoring; wind radii estimation; R34; ocean remote sensing

Share and Cite

MDPI and ACS Style

Qian, Z.; Yu, W.; Guo, W.; Bai, L.; Lu, X. Intercomparison, Fusion and Application of FY-3E/WindRAD and HY-2B/SCA Ocean Surface Wind Products for Tropical Cyclone Monitoring. Remote Sens. 2025, 17, 3809. https://doi.org/10.3390/rs17233809

AMA Style

Qian Z, Yu W, Guo W, Bai L, Lu X. Intercomparison, Fusion and Application of FY-3E/WindRAD and HY-2B/SCA Ocean Surface Wind Products for Tropical Cyclone Monitoring. Remote Sensing. 2025; 17(23):3809. https://doi.org/10.3390/rs17233809

Chicago/Turabian Style

Qian, Zonghao, Wei Yu, Wei Guo, Lina Bai, and Xiaoqin Lu. 2025. "Intercomparison, Fusion and Application of FY-3E/WindRAD and HY-2B/SCA Ocean Surface Wind Products for Tropical Cyclone Monitoring" Remote Sensing 17, no. 23: 3809. https://doi.org/10.3390/rs17233809

APA Style

Qian, Z., Yu, W., Guo, W., Bai, L., & Lu, X. (2025). Intercomparison, Fusion and Application of FY-3E/WindRAD and HY-2B/SCA Ocean Surface Wind Products for Tropical Cyclone Monitoring. Remote Sensing, 17(23), 3809. https://doi.org/10.3390/rs17233809

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