用SWOT方法提高海洋轨道大地水准面分辨率

IF 2.9 3区 地球科学 Q2 ASTRONOMY & ASTROPHYSICS
Xu Chen, Shengjun Zhang, Ole Baltazar Andersen, Yongjun Jia
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引用次数: 0

摘要

近几十年来,卫星测高一直是海洋大地水准面测定和重力恢复的主要数据来源。一般来说,高程衍生的大地水准面和重力异常模型通常以1‘ × 1’的网格间隔发布。然而,它们的实际空间分辨率远低于标称的~ 2公里水平。因此,利用卫星测高资料分析海洋大地水准面分辨率对海洋重力恢复研究至关重要。地表水和海洋地形(SWOT)任务是一颗新发射的卫星,它使用先进的雷达技术来观测水面高程的变化,通过沿轨道和跨轨道的二维条纹观测提供新的信息。本文介绍了在60°N和60°S范围内,在2°× 2°箱中,典型的传统最低点高度计和SWOT ka波段雷达干涉仪(KaRIn)的海洋大地水准面分辨率分析结果。我们展示了SWOT KaRIn捕获10公里以下沿航迹短波长信号的潜力,并分析了与该海洋大地水准面分辨率能力相关的关键海洋地球物理因素的基于bin的统计数据。一般来说,SWOT KaRIn在具有大规模海山或海沟的箱子上表现出更好的海洋大地水准面分辨率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Along-Track Marine Geoid Resolution Enhancement With SWOT

Along-Track Marine Geoid Resolution Enhancement With SWOT

Satellite altimetry has been the major data source for marine geoid determination·and gravity recovery in recent decades. In general, altimetry-derived geoid and gravity anomaly models are typically released with a 1' × 1' gridding interval. However, their actual spatial resolution is far lower than the nominal ∼2 km level. Therefore, analyzing the marine geoid resolution capability from satellite altimetry observations is crucial for marine gravity recovery studies. The Surface Water and Ocean Topography (SWOT) Mission is a newly launched satellite using advanced radar technology to make headway in observing the·variability of water surface elevations, providing new information through along-track and across-track two-dimensional swath observations. Here, we present the analysis results of marine geoid resolution capability for both typical conventional nadir altimeters and the SWOT Ka-band radar interferometer (KaRIn) in 2° × 2° bins worldwide between 60°N and 60°S. We demonstrate the potential of SWOT KaRIn to capture along-track short-wavelength signals below 10 km and analyze the bin-based statistics of key marine geophysical factors correlated with this marine geoid resolution capability. Generally, SWOT KaRIn exhibits better marine geoid resolution capability over bins with large-scale seamounts or trenches.

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来源期刊
Earth and Space Science
Earth and Space Science Earth and Planetary Sciences-General Earth and Planetary Sciences
CiteScore
5.50
自引率
3.20%
发文量
285
审稿时长
19 weeks
期刊介绍: Marking AGU’s second new open access journal in the last 12 months, Earth and Space Science is the only journal that reflects the expansive range of science represented by AGU’s 62,000 members, including all of the Earth, planetary, and space sciences, and related fields in environmental science, geoengineering, space engineering, and biogeochemistry.
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