HR: 1340h
AN: H23D-1166 [Abstracts]
TI: Spatial Scales of Tropical Precipitation Inferred From TRMM Microwave Imager Data
AU: * Smith, D F
EM: dean.f.smith@noaa.gov
AF: Center for Integrated Plasma Studies, University of Colorado
390 UCB, Boulder, CO 80309
AU: Gasiewski, A J
EM: al.gasiewski@noaa.gov
AF: NOAA/ETL, 325 Broadway, Boulder, CO 80305
AU: Jackson, D L
EM: darren.l.jackson@noaa.gov
AF: Cooperative Institute for Research in the Environmental Sciences, University of Colorado
216 UCB, Boulder, CO 80309
AU: Wick, G A
EM: gary.a.wick@noaa.gov
AF: NOAA/ETL, 325 Broadway, Boulder, CO 80305
AB:
The local spatial scales of tropical precipitating systems were studied using TRMM Microwave Imager (TMI) rain rate imagery
from the Tropical Rainfall Measuring Mission (TRMM) satellite. Rain rates were determined from TMI data using the Goddard
Profiling (GPROF) Version 5 algorithm. Following the analysis of Ricciardulli and Sardeshmukh (RS, [1]) who studied local
spatial scales of tropical deep convection using Global Cloud Imagery (GCI) data, active precipitating months were defined as
those having greater than 1mm/hr of rain for more than 5% of the time. Spatial autocorrelation values of rain rate were
subsequently computed on these grid cells for convectively active months from 1998 to 2002. The results were fitted to an
exponential correlation model using a nonlinear least squares routine to estimate a spatial correlation length at each grid
cell. The mean spatial scale over land was 94.3 km and over oceans was 121.8 km. An error analysis was performed which showed
that the error in these determinations was of order 1-5%. The results of this study should be useful in the design of
convective schemes for general circulation models and for precipitation error covariance models for use in numerical weather
prediction and associated data assimilation schemes. The results of the TMI study also largely concur with those of RS,
although the more direct relationship between the TMI data and rain rate relative to the GCI imagery provide more accurate
correlation length estimates. The results also confirm the strong impact of land in producing short spatial scale convective
rain.
[1] Ricciardulli, L., and Sardeshmukh, P. D., "Local Time and Space Scales of Organized
Tropical Deep Convection," J. Climate, v. 15, pp. 2775-2790, 2002.
DE: 1655 Water cycles (1836)
DE: 1833 Hydroclimatology
DE: 1640 Remote sensing
SC: Hydrology [H]
MN: 2004 AGU Fall Meeting