DOI: 10.3390/atmos17100946 ISSN: 2073-4433

Atmospheric Circulation over the East Pacific and Caribbean Tropical Cyclogenesis

Mark R. Jury

Tropical cyclone (TC) genesis in the Caribbean (July–October) is examined using composites of 44 storms (1979–2025) from model-assimilated in situ and satellite observations. Results identify how the atmospheric circulation over the East Pacific affects Atlantic TC activity. A zonal overturning cell over the Amazon is linked to a conveyor of tropical 150–200 hPa easterly winds (U 200), supported by a sea surface temperature dipole pattern. Convective activity over the Eastern Caribbean is significantly correlated with accumulated cyclone energy (ACE) and U 200 airflow (7–17° N 45–80° W). Upper easterlies in late summer precede cool-phase El Niño–Southern Oscillation (ENSO) and show a long-term trend of −0.08 m s−1/yr favoring TC genesis during the satellite era. Lag correlations reveal that daily upper winds lead convection by four days, reflecting westward-intensifying tropical waves. Composites of the 10 most active summers exhibit low-level westerly anomalies (~2 m/s) across Central America, a northward shift in salinity fluxes and the equatorial trough, and meridional overturning cells ascending over the Caribbean and subsiding over the Amazon. Oceanic responses include a weakening of the Caribbean Current and enhanced upwelling in the East Pacific and Atlantic. Global composite analyses reveal a westward-propagating Walker circulation moving at ~0.26 m/s, associated with an ocean Rossby wave during La Niña onset. The pulling effect of upper winds over the East Pacific ‘ride’ above negative sensible heat fluxes (−1011 W) from an expanding cold tongue. The downstream winds enhance upstream divergence at 150–200 hPa, while the surface fluxes create a deep thermodynamic ‘sink’. Together these statistical commonalities offer diagnostic guidance on TC genesis in the Caribbean.