An Analog Comparison between Rapidly and Slowly Intensifying Tropical Cyclones

被引:15
作者
Richardson, Jannetta C. [1 ]
Torn, Ryan D. [1 ]
Tang, Brian H. [1 ]
机构
[1] SUNY Albany, Dept Atmospher & Environm Sci, Albany, NY 12222 USA
关键词
Atmosphere; North Atlantic Ocean; North Pacific Ocean; Tropical cyclones; Reanalysis data; VERTICAL WIND SHEAR; HURRICANE EDOUARD 2014; MIDLEVEL DRY AIR; PART II; NORTH-ATLANTIC; CLIMATOLOGICAL ANALYSIS; ENVIRONMENTAL-CONTROL; STORM MOTION; INTENSIFICATION; PREDICTABILITY;
D O I
10.1175/MWR-D-21-0260.1
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
To better understand the conditions that favor tropical cyclone (TC) rapid intensification (RI), this study assesses environmental and storm-scale characteristics that differentiate TCs that undergo RI from TCs that undergo slow intensification (SI). This comparison is performed between analog TC pairs that have similar initial intensity, vertical wind shear, and maximum potential intensity. Differences in the characteristics of RI and SI TCs in the North Atlantic and western North Pacific basins are evaluated by compositing and comparing data from the fifth-generation European Centre for Medium-Range Weather Forecasts (ECMWF) Re-Analysis (ERA5) and the Gridded Satellite (GridSat) dataset. In the period leading up to the start of RI, RI TCs tend to have a stronger and deeper vortex that is more vertically aligned than SI TCs. Additionally, surface latent heat fluxes are significantly larger in RI TCs prior to the intensity change period, compared to SI TCs. The largest surface latent heat flux differences are initially located to the left of shear; subsequently, upshear and right-of-shear differences amplify, resulting in a more symmetric distribution of surface latent heat fluxes in RI TCs. Increasing azimuthal symmetry of surface latent heat fluxes in RI TCs, together with an increasing azimuthal symmetry of horizontal moisture flux convergence, promote the upshear migration of convection in RI TCs. These differences, and their evolution before and during the intensity change period, are hypothesized to support the persistence and invigoration of upshear convection and, thus, a more symmetric latent heating pattern that favors RI.
引用
收藏
页码:2139 / 2156
页数:18
相关论文
共 97 条
[71]   Climatological Analysis of Tropical Cyclone Intensity Changes under Moderate Vertical Wind Shear [J].
Rios-Berrios, Rosimar ;
Torn, Ryan D. .
MONTHLY WEATHER REVIEW, 2017, 145 (05) :1717-1738
[72]   An Ensemble Approach to Investigate Tropical Cyclone Intensification in Sheared Environments. Part I: Katia (2011) [J].
Rios-Berrios, Rosimar ;
Torn, Ryan D. ;
Davis, Christopher A. .
JOURNAL OF THE ATMOSPHERIC SCIENCES, 2016, 73 (01) :71-93
[73]   Airborne Doppler Observations of the Inner-Core Structural Differences between Intensifying and Steady-State Tropical Cyclones [J].
Rogers, Robert ;
Reasor, Paul ;
Lorsolo, Sylvie .
MONTHLY WEATHER REVIEW, 2013, 141 (09) :2970-2991
[74]   Observations of the Structure and Evolution of Hurricane Edouard (2014) during Intensity Change. Part II: Kinematic Structure and the Distribution of Deep Convection [J].
Rogers, Robert F. ;
Zhang, Jun A. ;
Zawislak, Jonathan ;
Jiang, Haiyan ;
Alvey, George R., III ;
Zipser, Edward J. ;
Stevenson, Stephanie N. .
MONTHLY WEATHER REVIEW, 2016, 144 (09) :3355-3376
[75]   Multiscale Structure and Evolution of Hurricane Earl (2010) during Rapid Intensification [J].
Rogers, Robert F. ;
Reasor, Paul D. ;
Zhang, Jun A. .
MONTHLY WEATHER REVIEW, 2015, 143 (02) :536-562
[76]   Improvements in the Probabilistic Prediction of Tropical Cyclone Rapid Intensification with Passive Microwave Observations [J].
Rozoff, Christopher M. ;
Velden, Christopher S. ;
Kaplan, John ;
Kossin, James P. ;
Wimmers, Anthony J. .
WEATHER AND FORECASTING, 2015, 30 (04) :1016-1038
[77]   New Probabilistic Forecast Models for the Prediction of Tropical Cyclone Rapid Intensification [J].
Rozoff, Christopher M. ;
Kossin, James P. .
WEATHER AND FORECASTING, 2011, 26 (05) :677-689
[78]   The Unexpected Rapid Intensification of Tropical Cyclones in Moderate Vertical Wind Shear. Part I: Overview and Observations [J].
Ryglicki, David R. ;
Cossuth, Joshua H. ;
Hodyss, Daniel ;
Doyle, James D. .
MONTHLY WEATHER REVIEW, 2018, 146 (11) :3773-3800
[79]   The Unexpected Rapid Intensification of Tropical Cyclones in Moderate Vertical Wind Shear. Part II: Vortex Tilt [J].
Ryglicki, David R. ;
Doyle, James D. ;
Jin, Yi ;
Hodyss, Daniel ;
Cossuth, Joshua H. .
MONTHLY WEATHER REVIEW, 2018, 146 (11) :3801-3825
[80]   An Examination of Tropical Cyclone Position, Intensity, and Intensity Life Cycle within Atmospheric Reanalysis Datasets [J].
Schenkel, Benjamin A. ;
Hart, Robert E. .
JOURNAL OF CLIMATE, 2012, 25 (10) :3453-3475