Title of article :
Impact of Doppler Radar Wind in Simulating the Intensity and Propagation of Rainbands Associated with Mesoscale Convective Complexes Using MM5-3DVAR System
Author/Authors :
S. Abhilash، نويسنده , , Someshwar Das، نويسنده , , S. R. Kalsi، نويسنده , , M. Das Gupta، نويسنده , , K. Mohankumar، نويسنده , , John P. George، نويسنده , , S. K. Banerjee، نويسنده , , S. B. Thampi، نويسنده , , D. Pradhan ، نويسنده ,
Issue Information :
ماهنامه با شماره پیاپی سال 2007
Abstract :
Pre-monsoon rainfall around Kolkata (northeastern part of India) is mostly of convective
origin as 80% of the seasonal rainfall is produced by Mesoscale Convective Systems (MCS). Accurate
prediction of the intensity and structure of these convective cloud clusters becomes challenging, mostly
because the convective clouds within these clusters are short lived and the inaccuracy in the models initial state
to represent the mesoscale details of the true atmospheric state. Besides the role in observing the internal
structure of the precipitating systems, Doppler Weather Radar(DWR) provides an important data source for
mesoscale and microscale weather analysis and forecasting. An attempt has been made to initialize the stormscale
numerical model using retrieved wind fields from single Doppler radar. In the present study, Doppler
wind velocities from the Kolkata Doppler weather radar are assimilated into a mesoscale model,MM5model
using the three-dimensional variational data assimilation (3DVAR) system for the prediction of intense
convective events that occurred during 0600 UTC on 5 May and 0000 UTC on 7 May, 2005. In order to
evaluate the impact of theDWRwind data in simulating these severe storms, three experiments were carried
out. The results show that assimilation of Doppler radar wind data has a positive impact on the prediction of
intensity, organization and propagation of rain bands associated with these mesoscale convective systems.
The assimilation system has to be modified further to incorporate the radar reflectivity data so that simulation
of the microphysical and thermodynamic structure of these convective storms can be improved.
Keywords :
Tropical mesoscale convective systems , Doppler weather radar , data assimilation , composite reflectivity , hydrometeors.
Journal title :
Pure and Applied Geophysics
Journal title :
Pure and Applied Geophysics