4.7 Article

Effects of Orography and Surface Heat Fluxes on the South Asian Summer Monsoon

期刊

JOURNAL OF CLIMATE
卷 27, 期 17, 页码 6647-6659

出版社

AMER METEOROLOGICAL SOC
DOI: 10.1175/JCLI-D-14-00138.1

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资金

  1. NSF [AGS-0754332, AGS-1062016]
  2. Harvard's Asia center
  3. Office of Naval Research [N00014-11-1-0617]
  4. National Science Foundation [AGS1253222]
  5. Div Atmospheric & Geospace Sciences
  6. Directorate For Geosciences [1253222] Funding Source: National Science Foundation

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A high-resolution (40 km horizontal) global model is used to examine controls on the South Asian summer monsoon by orography and surface heat fluxes. In a series of integrations with altered topography and reduced surface heat fluxes, monsoon strength, as indicated by a vertical wind shear index, is highly correlated with the amplitude of the maximum boundary layer equivalent potential temperature (theta(eb)) over South Asia. Removal of the Tibetan Plateau while preserving the Himalayas and adjacent mountain ranges has little effect on monsoon strength, and monsoon strength decreases approximately linearly as the height of the Himalayas is reduced. In terms of surface heat flux changes, monsoon strength is most sensitive to those in the location of the theta(eb) maximum just south of the Himalayas. These results are consistent with the recent idea that topography creates a strong monsoon by insulating the thermal maximum from dry extratropical air. However, monsoon strength is found to be more sensitive to variations in the theta(eb) maximum when topography is altered than when surface heat fluxes are reduced, and it is suggested that free-tropospheric humidity changes lead to deviations from strict convective quasi equilibrium and cause this difference. When topography is reduced, dry extratropical air intrudes into the troposphere over the theta(eb) maximum and is entrained by local deep convection, requiring a higher theta(eb) to achieve convective equilibrium with a given upper-tropospheric temperature and associated balanced monsoon flow. These results illustrate potential complexities that need to be included in simple theories for monsoon strength built on strict convective quasi equilibrium.

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