HR: 0800h
AN: A21C-0642 [Abstracts]
TI: Distinct Structure and Intensity in Hurricanes Katrina and Ophelia (2005)
AU: * Ming, J
EM: ming@orca.rsmas.miami.edu
AF: Department of Atmospheric Sciences,
Nanjing University, 22rd Hankou Rd, Nanjing, JS 210093, China
AU: Chen, S S
EM: schen@rsmas.miami.edu
AF: RSMAS/University of Miami, 4600 Rickenbacker Causeway, Miami, FL 33149, United States
AB:
Although many previous studies have shown that a large area of warm water provides a favorable condition for
intensification of hurricanes, storm development and intensity over the warm ocean varies in a broad range.
Various factors contribute to the storm intensity including the atmospheric environment and internal dynamic of
each individual storm. In the 2005 hurricane season, Hurricanes Ophelia and Katrina both developed over the
warm water near the east coast of South Florida. However, they evolved differently with distinct structure and
intensity. Katrina became one of the most intense Category 5 hurricanes in the Gulf of Mexico, whereas Ophelia
remained a relatively weak Category 1 hurricane over several days near the Gulf Stream. In this study, we aim to
investigate the relationship between the hurricanes and their environment and examine the structures of the
hurricanes developed over the warm water. We focus on analyzing the structures of these two hurricanes to shed
light on why they both move over the warm water, one intensified quickly and the other did not. To best resolve the
storm structure, we use the high resolution, non-hydrostatic Weather Research and Forecasting (WRF) modeling
system, with 1.33 km grid horizontal spacing on the finest nested mesh. The model includes the vortex-following
nested grids similar to that developed at the University of Miami and tested in various hurricane studies. There
are 4 nested domains for the simulation of Hurricane Katrina and 3 for Hurricane Ophelia. The initial and lateral
boundary conditions for Katrina are the output from NCAR's ensemble Kalman filter (EnKF) data assimilation,
and the conditions for Ophelia are interpolated from the 1°2National Centers for
Environmental Prediction (NCEP) global analysis fields at 6-h intervals. The extensive observations from the
Hurricane Rainbands and Intensity Change Experiment (RAINEX) are used to evaluate and validate the model
simulations. Multiple airborne radar reflectivity and 3D Doppler wind observations during both hurricanes
provided unprecedented data sets for this high-resolution modeling study. A comprehensive analysis of model
output in comparison with RAINEX observations will help to understand the physical and dynamic processes that
contributed to the distinct evolution of the two hurricanes.
DE: 3355 Regional modeling
DE: 3374 Tropical meteorology
SC: Atmospheric Sciences [A]
MN: 2007 Fall Meeting