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July 30, 2026Quarterly Journal of the Royal Meteorological Society0 citationsOpen Access

Characteristics of upper‐level updrafts and downdrafts in the anvils of tropical deep convective clouds

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SKSreehari KizhuveettilJAJordi Vilà-Guerau De ArellanoMKMartina Krämer

Key Points

  • The aim is to understand the thermodynamic and microphysical relationships between updrafts and downdrafts in tropical deep convective anvil clouds.
  • Analyzed in-situ measurements from the ACRIDICON–CHUVA field campaign.
  • Investigated the relationship between thermodynamic properties and vertical air motion at altitudes of 10–14 km.
  • Characterized cloud water content and particle sizes in optically thick and thin regions.
  • Downdrafts showed higher cloud particle number concentrations than updrafts; median IWC was also higher in downdrafts.
  • Mean draft diameters increased with altitude, while air-mass fluxes decreased significantly due to lower vertical velocities.
  • Stronger drafts had higher concentrations of smaller particles at upper levels, with no clear trends of cloud water content with altitude.

Abstract

Abstract This study examines thermodynamic and microphysical relationships between in‐cloud updrafts and downdrafts within tropical deep convective anvil clouds, using aircraft in situ measurements from the Aerosol, Cloud, Precipitation, and Radiation Interactions and Dynamics of Convective Cloud Systems–Cloud Processes of the Main Precipitation Systems in Brazil (ACRIDICON–CHUVA) field campaign. Our results extend current knowledge of in‐cloud drafts to higher altitudes and add detail regarding their microphysical characteristics. Key findings include observational evidence of supersaturated downdrafts and higher cloud particle number concentrations in downdrafts than in updrafts within optically thick anvil clouds. Mean draft diameters exhibit a broadening trend with altitude, while mean air‐mass fluxes decrease due to decreasing vertical velocity intensity and atmospheric density. Cloud water content is comparable in up‐ and downdrafts and increases with vertical velocity at all levels, without a clear trend with altitude. At upper levels (10–14 km), large negative vertical velocities are observed in supersaturated regions ; therefore, upper‐level downdrafts do not appear to be driven by latent cooling. Optically thick cloud regions exhibit higher median RH and ice water content (IWC) compared with optically thin clouds, with downdrafts () showing higher median and IWC than updrafts. Particle size distributions are similar for up‐ and downdrafts of comparable strength. With altitude, maximum particle size increases, and the number concentration of larger particles () increases more strongly in stronger drafts than in weaker drafts. Stronger drafts also exhibit higher concentrations of particles smaller than 100 m at upper levels. Optically thick regions exhibit higher particle number concentrations across all sizes than optically thin regions. Notably, within the optically thick regions, downdrafts show higher particle number concentrations than updrafts for all sizes. Overall, the characteristics of updrafts and downdrafts in anvil clouds exhibit strong similarities, suggesting the influence of processes, such as updraft–downdraft mixing and inertia‐driven downdrafts originating from older updraft cores, shaping microphysical and dynamical properties of anvil clouds.

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Cite This Study

Kizhuveettil et al. (2026) studied this question.

synapsesocial.com/papers/6a6af54a60e2b924d3ea1457https://doi.org/10.1002/qj.70268
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