Abstract
Three-dimensional distributions of the apparent heat source (Q1) 2 radiative heating (QR) estimated from Tropical Rainfall Measuring Mission (TRMM) Precipitation Radar (PR) utilizing the spectral latent heating (SLH) algorithm are analyzed. Mass-weighted and vertically integrated Q1 2 QR averaged over the tropical oceans is estimated as ~72.6 J s21 (~2.51 mm day-1) and that over tropical land is;73.7 J s-1 (~2.55 mm day-1) for 30°N-30°S. It is shown that nondrizzle precipitation over tropical and subtropical oceans consists of two dominant modes of rainfall systems: deep systems and congestus. A rough estimate of the shallow-heating contribution against the total heating is about 46.7% for the average tropical oceans, which is substantially larger than the 23.7% over tropical land. Although cumulus congestus heating linearly correlates with SST, deep-mode heating is dynamically bounded by large-scale subsidence. It is notable that a substantial amount of rain, as large as 2.38 mm day-1 on average, is brought from congestus clouds under the large-scale subsiding circulation. It is also notable that, even in the region with SSTs warmer than 28°C, large-scale subsidence effectively suppresses the deep convection, with the remaining heating by congestus clouds. The results support that the entrainment of mid-lower-tropospheric dry air, which accompanies the large-scale subsidence, is the major factor suppressing the deep convection. Therefore, a representation of the realistic entrainment is very important for proper reproduction of precipitation distribution and the resultant large-scale circulation. © 2010 American Meteorological Society.
Cite
CITATION STYLE
Takayabu, Y. N., Shige, S., Tao, W. K., & Hirota, N. (2010). Shallow and deep latent heating modes over tropical oceans observed with TRMM PR spectral latent heating data. Journal of Climate, 23(8), 2030–2046. https://doi.org/10.1175/2009JCLI3110.1
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.