Sensitivity to the Representation of Microphysical Processes in Numerical Simulations during Tropical Storm FormationSource: Monthly Weather Review:;2016:;volume( 144 ):;issue: 010::page 3611DOI: 10.1175/MWR-D-15-0259.1Publisher: American Meteorological Society
Abstract: n analysis of in situ observations from the nondeveloping tropical disturbance named TCS025 revealed that a combination of unfavorable system-scale and environmental factors limited further development. In this study, a multiphysics ensemble of high-resolution simulations of TCS025 are analyzed and compared. A simulation that overdeveloped the TCS025 disturbance is compared with one that correctly simulated nondevelopment and reveals that convection was stronger and diabatic heating rates were larger in the developing simulation. This led to continued spinup of the low-level circulation primarily through vorticity stretching. In contrast, convection was much weaker in the nondeveloping simulation, and after an initial period of deep convection, average vorticity tendencies from stretching became weakly negative, which allowed for the frictional spindown of the low-level circulation.Convective-scale differences identified early in the simulations appear to have resulted from the explicit representation of graupel in the developing simulation. The net impacts resulting from these differences in convection are manifest in the average diabatic heating profiles that are important for determining the developmental outcome. Additional simulations are conducted whereby the diabatic heating rates are artificially adjusted. Relatively small changes in the diabatic heating rate led to significantly different outcomes with respect to storm development, and the degree of overdevelopment is largely dictated by the diabatic heating rate. These findings suggest the correct representation of convective processes and associated diabatic heating are necessary to adequately forecast tropical cyclogenesis, especially for systems near a threshold of development like TCS025.
|
Collections
Show full item record
contributor author | Penny, Andrew B. | |
contributor author | Harr, Patrick A. | |
contributor author | Doyle, James D. | |
date accessioned | 2017-06-09T17:33:16Z | |
date available | 2017-06-09T17:33:16Z | |
date copyright | 2016/10/01 | |
date issued | 2016 | |
identifier issn | 0027-0644 | |
identifier other | ams-87147.pdf | |
identifier uri | http://onlinelibrary.yabesh.ir/handle/yetl/4230784 | |
description abstract | n analysis of in situ observations from the nondeveloping tropical disturbance named TCS025 revealed that a combination of unfavorable system-scale and environmental factors limited further development. In this study, a multiphysics ensemble of high-resolution simulations of TCS025 are analyzed and compared. A simulation that overdeveloped the TCS025 disturbance is compared with one that correctly simulated nondevelopment and reveals that convection was stronger and diabatic heating rates were larger in the developing simulation. This led to continued spinup of the low-level circulation primarily through vorticity stretching. In contrast, convection was much weaker in the nondeveloping simulation, and after an initial period of deep convection, average vorticity tendencies from stretching became weakly negative, which allowed for the frictional spindown of the low-level circulation.Convective-scale differences identified early in the simulations appear to have resulted from the explicit representation of graupel in the developing simulation. The net impacts resulting from these differences in convection are manifest in the average diabatic heating profiles that are important for determining the developmental outcome. Additional simulations are conducted whereby the diabatic heating rates are artificially adjusted. Relatively small changes in the diabatic heating rate led to significantly different outcomes with respect to storm development, and the degree of overdevelopment is largely dictated by the diabatic heating rate. These findings suggest the correct representation of convective processes and associated diabatic heating are necessary to adequately forecast tropical cyclogenesis, especially for systems near a threshold of development like TCS025. | |
publisher | American Meteorological Society | |
title | Sensitivity to the Representation of Microphysical Processes in Numerical Simulations during Tropical Storm Formation | |
type | Journal Paper | |
journal volume | 144 | |
journal issue | 10 | |
journal title | Monthly Weather Review | |
identifier doi | 10.1175/MWR-D-15-0259.1 | |
journal fristpage | 3611 | |
journal lastpage | 3630 | |
tree | Monthly Weather Review:;2016:;volume( 144 ):;issue: 010 | |
contenttype | Fulltext |