Contrasts of Large-Scale Moisture and Heat Budgets between Different Sea Areas of the South China Sea and the Adjacent Land

Author:

Zhang Chunyan1,Wang Donghai234,Yao Lebao2,Wu Zhenzhen5,Ma Qianhui2,Li Yongsheng1,Wang Peidong1

Affiliation:

1. b Guangdong Meteorological Data Center, Guangdong Meteorological Administration, Guangzhou, China

2. a School of Atmospheric Sciences, Sun Yat-sen University, Guangdong Province Key Laboratory for Climate Change and Natural Disaster Studies, Key Laboratory of Tropical Atmosphere-Ocean System, Ministry of Education, Zhuhai, China

3. c Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Zhuhai, China

4. d National Observation and Research Station of Coastal Ecological Environments in Macao, Macao Environmental Research Institute, Macau University of Science and Technology, Macao, China

5. e Institute of Meteorological Science of Hunan Province, Hunan Key Laboratory of Meteorological Disaster Prevention and Reduction, Changsha, China

Abstract

Abstract This study investigates and compares large-scale moisture and heat budgets over the eastern rainy sea area around Dongsha, the western rainless sea area around Xisha, and the northern coastland of the South China Sea. Ten-year (2011–20) surface, balloon-sounding, satellite measurements, and ERA5 reanalysis are merged into the physically consistent data to study annual and vertical variations of the budgets. It shows that the surface and column-integrated heat and moisture budgets have the smallest annual evolution over the coastland. The latent heat as a key heat contributor in summer is mainly offset by total cold advection and partially offset by net radiative cooling. The horizontal moisture advection below 700 hPa presents moistening over the sea whereas drying over the coastland during rainy months, in which the vertical moisture advection presents moistening up to 250 hPa for all three subregions. The horizontal temperature advection is weak throughout the year over the sea but displays strong top warming and bottom cooling in summer and nearly the opposite in winter over the coastland. The diabatic cooling with a peak at ∼700 hPa in winter is largely due to the enhanced radiative cooling and latent cooling. While the diabatic heating with a peak at ∼500 hPa in summer is largely due to the enhanced latent heating. The earliest atmospheric heating and moistening occur in spring over the coastland, inducing the earliest precipitation increase. The enhanced heating and moistening over Xisha have a 1-month lag relative to Dongsha, resulting in lagging precipitation.

Funder

the National Key R&D Program of China

Guangdong Major Project of Basic and Applied Basic Research

Collaborative Innovation Center for Water Treatment Technology and Materials

Publisher

American Meteorological Society

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