Principal-component estimates of the Kuroshio Current axis and path based on the mathematical verification between satellite altimeter and drifting buoy data
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作者:
Zhanpeng Zhuang
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The First Institute of Oceanography,Ministry of Natural Resources
Laboratory for Regional Oceanography and Numerical Modeling,Qingdao National Laboratory for Marine Science and TechnologyThe First Institute of Oceanography,Ministry of Natural Resources
Zhanpeng Zhuang
[1
,2
]
Zhenli Hui
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机构:
The First Institute of Oceanography,Ministry of Natural Resources
Laboratory for Regional Oceanography and Numerical Modeling,Qingdao National Laboratory for Marine Science and TechnologyThe First Institute of Oceanography,Ministry of Natural Resources
Zhenli Hui
[1
,2
]
Guangbing Yang
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机构:
The First Institute of Oceanography,Ministry of Natural Resources
Laboratory for Regional Oceanography and Numerical Modeling,Qingdao National Laboratory for Marine Science and TechnologyThe First Institute of Oceanography,Ministry of Natural Resources
Guangbing Yang
[1
,2
]
Xinhua Zhao
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机构:
Institute of Oceanology,Chinese Academy of SciencesThe First Institute of Oceanography,Ministry of Natural Resources
Xinhua Zhao
[3
]
Yeli Yuan
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机构:
The First Institute of Oceanography,Ministry of Natural Resources
Laboratory for Regional Oceanography and Numerical Modeling,Qingdao National Laboratory for Marine Science and TechnologyThe First Institute of Oceanography,Ministry of Natural Resources
Yeli Yuan
[1
,2
]
机构:
[1] The First Institute of Oceanography,Ministry of Natural Resources
[2] Laboratory for Regional Oceanography and Numerical Modeling,Qingdao National Laboratory for Marine Science and Technology
[3] Institute of Oceanology,Chinese Academy of Sciences
We used satellite altimetry data to investigate the Kuroshio Current because of the higher resolution and wider range of observations. In previous studies, satellite absolute geostrophic velocities were used to study the spatiotemporal variability of the sea surface velocity field along the current, and extraction methods were employed to detect the Kuroshio axes and paths. However, sea surface absolute geostrophic velocity estimated from absolute dynamic topography should be regarded as the geostrophic component of the actual surface velocity, which cannot represent a sea surface current accurately. In this study, mathematical verification between the climatic absolute geostrophic and bin-averaged drifting buoy velocity was established and then adopted to correct the satellite absolute geostrophic velocities. There were some differences in the characteristics between satellite geostrophic and drifting buoy velocities. As a result, the corrected satellite absolute geostrophic velocities were used to detect the Kuroshio axis and path based on a principal-component detection scheme. The results showed that the detection of the Kuroshio axes and paths from corrected absolute geostrophic velocities performed better than those from satellite absolute geostrophic velocities and surface current estimations. The corrected satellite absolute geostrophic velocity may therefore contribute to more precise day-to-day detection of the Kuroshio Current axis and path.
机构:
Dept. Earth Syst. Sci. and Technol., Interdisc. Grad. Sch. of Eng. Sci., Kyushu University, KasugaDept. Earth Syst. Sci. and Technol., Interdisc. Grad. Sch. of Eng. Sci., Kyushu University, Kasuga
Uchida H.
Imawaki S.
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Res. Institute for Applied Mechanics, Kyushu University, KasugaDept. Earth Syst. Sci. and Technol., Interdisc. Grad. Sch. of Eng. Sci., Kyushu University, Kasuga
Imawaki S.
Hu J.-H.
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机构:
Department of Oceanography, National Taiwan Ocean UniversityDept. Earth Syst. Sci. and Technol., Interdisc. Grad. Sch. of Eng. Sci., Kyushu University, Kasuga
机构:
Tokyo University of Science, Katsushika-ku, Department of Applied Physics, Tokyo,125-8585, Japan
Device Technology Research Institute, National Institute of Advanced Industrial Science and Technology, Ibaraki, Tsukuba,305-8565, JapanTokyo University of Science, Katsushika-ku, Department of Applied Physics, Tokyo,125-8585, Japan
Kubo, Yuki
Yonezawa, Masaharu
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Tokyo University of Science, Katsushika-ku, Department of Applied Physics, Tokyo,125-8585, Japan
Device Technology Research Institute, National Institute of Advanced Industrial Science and Technology, Ibaraki, Tsukuba,305-8565, JapanTokyo University of Science, Katsushika-ku, Department of Applied Physics, Tokyo,125-8585, Japan
Yonezawa, Masaharu
Shima, Hisashi
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Device Technology Research Institute, National Institute of Advanced Industrial Science and Technology, Ibaraki, Tsukuba,305-8565, JapanTokyo University of Science, Katsushika-ku, Department of Applied Physics, Tokyo,125-8585, Japan
Shima, Hisashi
Naitoh, Yasuhisa
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Device Technology Research Institute, National Institute of Advanced Industrial Science and Technology, Ibaraki, Tsukuba,305-8565, JapanTokyo University of Science, Katsushika-ku, Department of Applied Physics, Tokyo,125-8585, Japan
Naitoh, Yasuhisa
Akinaga, Hiroyuki
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Device Technology Research Institute, National Institute of Advanced Industrial Science and Technology, Ibaraki, Tsukuba,305-8565, JapanTokyo University of Science, Katsushika-ku, Department of Applied Physics, Tokyo,125-8585, Japan
Akinaga, Hiroyuki
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Nokami, Toshiki
Itoh, Toshiyuki
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Toyota Physical and Chemical Research Institute, Aichi, Nagakute,480-1192, JapanTokyo University of Science, Katsushika-ku, Department of Applied Physics, Tokyo,125-8585, Japan
Itoh, Toshiyuki
Kinoshita, Kentaro
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Tokyo University of Science, Katsushika-ku, Department of Applied Physics, Tokyo,125-8585, JapanTokyo University of Science, Katsushika-ku, Department of Applied Physics, Tokyo,125-8585, Japan