Validation of Nadir SWH and Its Variance Characteristics from CFOSAT in China’s Offshore Waters

Author:

Xu Jingwei12ORCID,Wu Huanping3,Xu Ying4,Koldunov Nikolay V.5,Zhang Xiuzhi3,Kong Lisha3,Xu Min6,Fraedrich Klaus12,Zhi Xiefei1

Affiliation:

1. Key Laboratory of Meteorological Disaster, Ministry of Education (KLME)/Joint International Research Laboratory of Climate and Environment Change (ILCEC)/Collaborative Innovation Center on Forecast and Evaluation of Meteorological Disasters (CIC-FEMD)/Joint Center for Data Assimilation Research and Applications, Nanjing University of Information Science and Technology (NUIST), Nanjing 210044, China

2. Max Planck Institute for Meteorology, Bundesstrasse 53, 20146 Hamburg, Germany

3. National Climate Center, Beijing 100081, China

4. National Satellite Ocean Application Service, Ministry of Natural Resources, Beijing 100081, China

5. Alfred Wegener Institute (AWI), 27568 Bremerhaven, Germany

6. Climate Center of Jiangsu Province, Nanjing 210008, China

Abstract

The offshore waters of China are a typical monsoon−affected area where the significant wave height (SWH) is strongly influenced by the different seasonal mean flow in winter and summer. However, limited in situ validations of the SWH have been performed on the China–France Oceanography Satellite (CFOSAT) in these waters. This study focused on validating CFOSAT nadir SWH data with SWH data from in situ buoy observations for China’s offshore waters and the Haiyang−2B (HY−2B) satellite, from July 2019 to December 2021. The validation against the buoy data showed that the relative absolute error has a seasonal cycle, varying in a narrow range near 35%. The RMSE of the CFOSAT nadir SWH was 0.29 m when compared against in situ observations, and CFOSAT was found to be more likely to overestimate the SWH under calm sea conditions. The sea−surface winds play a key role in calm sea conditions. The spatial distributions of the CFOSAT and HY−2B seasonal SWHs were similar, with a two−year mean SWH−field correlation coefficient of 0.98. Moreover, the coherence between the two satellites’ SWH variance increased with SWH magnitude. Our study indicates that, in such typical monsoon−influenced waters, attention should be given to the influence of sea conditions on the accuracy of CFOSAT SWH, particularly in studies that combine data from multiple, long−duration space−based sensors.

Funder

National Natural Science Foundation of China

Ministry of Science and Technology of China

China Meteorological Administration

Priority Academic Program Development of Jiangsu Higher Education Institutions

Publisher

MDPI AG

Subject

General Earth and Planetary Sciences

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