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Quanan Zheng

Researcher at University of Maryland, College Park

Publications -  184
Citations -  23882

Quanan Zheng is an academic researcher from University of Maryland, College Park. The author has contributed to research in topics: Sea surface temperature & Internal wave. The author has an hindex of 34, co-authored 163 publications receiving 20319 citations. Previous affiliations of Quanan Zheng include National Science Foundation & University of Delaware.

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Interpretation of scatterometer ocean surface wind vector EOFs over the Northwestern Pacific

TL;DR: In this paper, a vector empirical orthogonal function (VEOF) method was used for the analysis of satellite scatterometer winds over the northwestern Pacific and the Hilbert-Huang transform (HHT) was employed in the analysis.
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A case study of near-inertial oscillation in the South China Sea using mooring observations and satellite altimeter data

TL;DR: A near-inertial oscillation burst event in the west South China Sea (SCS) was observed by an upward-looking mooring Acoustic Doppler Current Profiler (ADCP) in summer 2004 as discussed by the authors.
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Complex Singular Value Decomposition Analysis of Equatorial Waves in the Pacific Observed by TOPEX/Poseidon Altimeter

TL;DR: In this article, the mean of the sea level deviation data derived from the TOPEX/Poseidon altimeter in the equatorial Pacific, between 10°S and 10°N, and between 120°E and 78°W, from cycles 2 to 136 (3 October 1992-2 June 1996), are extracted using a maximum-minimum average method.
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New Surveys of a Branch of the Indonesian Throughflow

TL;DR: The Indonesian Throughflow (ITF) as discussed by the authors is a key component of global ocean circulation, and its magnitude and variability play an important role in determining heat and nutrient exchange to other ocean basins.
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Mechanism of internal waves in the Luzon Strait

TL;DR: In this article, a zero-order complex frequency-wavenumber relation is used to describe the dispersion relation of the generated internal waves, and the imaginary part is an exponential growth rate.