TY - JOUR
T1 - Large Eddy Simulation of an Entire Tropical Cyclone From Initial Vortex to Maturity
AU - Ito, J.
AU - Sakurai, Y.
AU - Tonga, L. P.S.
AU - Niino, H.
AU - Miyamoto, Y.
N1 - Publisher Copyright:
© 2026. The Author(s).
PY - 2026/1/28
Y1 - 2026/1/28
N2 - We simulated a tropical cyclone in an idealized environment, from its weak initial vortex to maturity, using a regional numerical weather prediction model with a uniform horizontal resolution of 100 m, regarded as a large eddy simulation (LES). Results of the LES were compared with those of the same model, but with a horizontal resolution of 2 km. Both experiments attained similar peak intensities ((Formula presented.) hPa), but the LES uniquely captured kilometer-scale rolls in the boundary layer, persistent shallow mesovortices near the eyewall, and countless sub-kilometer-scale patches of positive and negative vorticity. Rapid intensification (RI) in the LES was delayed by approximately 26 hr relative to that in the 2 km model. Composite analysis confirmed that mesovortices interfered with the azimuthally averaged secondary circulation. The prevalence of negative vorticity and decelerated inflow in the LES are likely to delay the RI.
AB - We simulated a tropical cyclone in an idealized environment, from its weak initial vortex to maturity, using a regional numerical weather prediction model with a uniform horizontal resolution of 100 m, regarded as a large eddy simulation (LES). Results of the LES were compared with those of the same model, but with a horizontal resolution of 2 km. Both experiments attained similar peak intensities ((Formula presented.) hPa), but the LES uniquely captured kilometer-scale rolls in the boundary layer, persistent shallow mesovortices near the eyewall, and countless sub-kilometer-scale patches of positive and negative vorticity. Rapid intensification (RI) in the LES was delayed by approximately 26 hr relative to that in the 2 km model. Composite analysis confirmed that mesovortices interfered with the azimuthally averaged secondary circulation. The prevalence of negative vorticity and decelerated inflow in the LES are likely to delay the RI.
KW - cloud resolving model
KW - large eddy simulaiton
KW - mesovortices
KW - rapid intensification
KW - roll structures
KW - tropical cyclone
UR - https://www.scopus.com/pages/publications/105027531713
UR - https://www.scopus.com/pages/publications/105027531713#tab=citedBy
U2 - 10.1029/2025GL119560
DO - 10.1029/2025GL119560
M3 - Article
AN - SCOPUS:105027531713
SN - 0094-8276
VL - 53
JO - Geophysical Research Letters
JF - Geophysical Research Letters
IS - 2
M1 - e2025GL119560
ER -