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Water Vapor Flux-Profile Relationship in the Stable Boundary Layer over the Sea Surface
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  • Yubin Ma,
  • Xueling Cheng,
  • Qilong Li,
  • Lin Wu,
  • Qingcun Zeng,
  • Jiangbo Jin,
  • ShiYong Shao,
  • Junmin Li,
  • Chenghui Han
Yubin Ma
Institute of Atmospheric Physics Chinese Academy of Sciences
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Xueling Cheng
Institute of Atmospheric Physics, Chinese Academy of Sciences

Corresponding Author:[email protected]

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Qilong Li
Institute of Atmospheric Physics
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Lin Wu
Institute of Atmospheric Physics, Chinese Academy of Sciences
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Qingcun Zeng
Institute of Atmospheric Physics, Chinese Academy of Sciences
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Jiangbo Jin
Institute of Atmospheric Physics, Chinese Academy of Sciences
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ShiYong Shao
Anhui Institute of Optics and Fine Mechanics, Chinese Academy of Sciences
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Junmin Li
South China Sea Institute of Oceanology, Chinese Academy of Sciences
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Chenghui Han
South Chin Sea Institute of Oceanology, Chinese Academy of Sciences
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Abstract

Comprehensive marine atmospheric turbulence observation data, meteorological sounding and sea surface conditions in the South China Sea were employed to analyze and parameterize the vapor profile in the stable marine atmospheric boundary layer. The observations involved a three-dimensional ultrasonic anemometer, water vapor carbon dioxide analyzer, radiosonde and buoy. This paper theoretically determined that the water vapor profile function φq differs from the temperature profile function φh and that φq should be independently parameterized. A linear relationship existed between the dimensionless water vapor gradient and stability parameters based on the observation results, and φq was then obtained as φq(z/L)=a(z/L)+b, in which the stability covered the stability range (z/L>1). This result was applied in the Tropical Ocean-Global Atmosphere Coupled-Ocean Atmosphere Response Experiment (COARE) bulk flux algorithm, and the simulation of the latent heat flux was improved.