Published October 2018 | Version v1
Journal article

Wet-to-dry shift over Southwest China in 1994 tied to the warming of tropical warm pool

  • 1. Chinese Academy of Sciences, CAS Key Laboratory of Regional Climate-Environment for Temperate East Asia, Institute of Atmospheric Physics (China)
  • 2. Chinese Academy of Sciences, State Key Laboratory of Numerical Modeling for Atmospheric Sciences and Geophysical Fluid Dynamics, Institute of Atmospheric Physics (China)
  • 3. City University of Hong Kong, Guy Carpenter Asia-Pacific Climate Impact Centre, School of Energy and Environment (China)
  • 4. Chinese Academy of Sciences, State Key Laboratory of Tropical Oceanography, South China Sea Institute of Oceanology (China)

Description

The autumn climate in Southwest China (SWC) experienced a notable wet-to-dry shift in 1994. Associated with this change in precipitation, decadal signatures of large-scale atmospheric circulation and SST identify a likely dynamical origin: the tropical warm pool (TWP) consisting of tropical northwest Pacific (TNWP, 3°S–12°N and 110°E–150°E) sector and tropical east Indian Ocean (TEI, 10°S–3°N and 80°E–110°E) sector. A cold-to-warm phase switch of TWP SST occurred in 1994, coinciding exactly with the timing of the regime transition of SWC precipitation. During post-1994 period, warm states in the TNWP and TEI sectors plays in a synergistic fashion to invoke dry decades in SWC. On the one side, warm SST over the TNWP sector excites an anomalous cyclone centered on the South China Sea directed opposite to the climatological moisture transport and strengthened zonal wind to its west accompanied by a weakening of the poleward flux; on the other side, warm SST over the TEI sector acts to intensify inflow into TEI with less concurrent transfer of moisture to SWC and to steer moisture to the northern Arabic Sea and away from the SWC-oriented track. Meanwhile, the troposphere over SWC is capped by subsidence, which is jointly contributed by TNWP and TEI. It then follows a reduced moisture supply, suppressed convective activity, and anomalous divergence in SWC, bringing a precipitation deficit there. In contrast, cold TWP SST during 1961–1994 favors wet conditions in SWC, given a perfectly symmetrical circulation pattern. Further, the dominant role of TWP is confirmed, because the modeled response to TWP SST forcing alone bears a great resemblance to the observed evidence. Finally, it is also found that the teleconnected influence induced by TWP is stronger in southern SWC than in northern SWC, which explains the south-north gradient of interdecadal signal of SWC precipitation.

Additional details

Identifiers

Publishing Information

Journal Title
Climate Dynamics
Journal Volume
51
Journal Issue
7-8
Journal Page Range
p. 3111-3123
ISSN
0930-7575
CODEN
CLDYEM

INIS

Country of Publication
Germany
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
51016248
Subject category
S54: ENVIRONMENTAL SCIENCES;
Descriptors DEI
ATMOSPHERIC CIRCULATION; CHINA; CHINA SEA; CYCLONES; DROUGHTS; INDIAN OCEAN; MOISTURE; PONDS; PRECIPITATION; TROPOSPHERE
Descriptors DEC
ASIA; EARTH ATMOSPHERE; PACIFIC OCEAN; SEAS; SEPARATION PROCESSES; SURFACE WATERS

Optional Information

Copyright
Copyright (c) 2018 Springer-Verlag GmbH Germany, part of Springer Nature