The effect of turbulence, gravity, and non-continuum hydrodynamic interactions on the drop size distribution in clouds

Fuente: arXiv
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Hauptverfasser: Dhanasekaran, Johnson, Koch, Donald. L.
Format: Preprint
Veröffentlicht: 2025
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author Dhanasekaran, Johnson
Koch, Donald. L.
author_facet Dhanasekaran, Johnson
Koch, Donald. L.
contents The evolution of micron-sized droplets in clouds is studied with focus on the 'size-gap' regime of 15-40 $μm$ radius, where condensation and differential sedimentation are least effective in promoting growth. This bottleneck leads to inaccurate growth models and turbulence can potentially rectify disagreement with in-situ cloud measurements. The role of turbulent collisions, mixing of droplets, and water vapour fluctuations in crossing the 'size-gap' has been analysed in detail. Collisions driven by the coupled effects of turbulent shear and differential sedimentation are shown to grow drizzle sized droplets. Growth is also promoted by turbulence-induced water vapour fluctuations, which maintain polydispersity during the initial condensation driven growth and facilitate subsequent growth by differential sedimentation driven coalescence. The collision rate of droplets is strongly influenced by non-continuum hydrodynamics and so the size evolution beyond the condensation regime is found to be very sensitive to the mean free path of air. Turbulence-induced inertial clustering leads to a moderate enhancement in the growth rate but the intermittency of the turbulent shear rate does not change the coalescence rate significantly. The coupled influence of all these phenomena is evaluated by evolving a large number of droplets within an adiabatically rising parcel of air using a Monte Carlo scheme that captures turbulent intermittency and mixing.
format Preprint
id arxiv_https___arxiv_org_abs_2501_01086
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The effect of turbulence, gravity, and non-continuum hydrodynamic interactions on the drop size distribution in clouds
Dhanasekaran, Johnson
Koch, Donald. L.
Fluid Dynamics
The evolution of micron-sized droplets in clouds is studied with focus on the 'size-gap' regime of 15-40 $μm$ radius, where condensation and differential sedimentation are least effective in promoting growth. This bottleneck leads to inaccurate growth models and turbulence can potentially rectify disagreement with in-situ cloud measurements. The role of turbulent collisions, mixing of droplets, and water vapour fluctuations in crossing the 'size-gap' has been analysed in detail. Collisions driven by the coupled effects of turbulent shear and differential sedimentation are shown to grow drizzle sized droplets. Growth is also promoted by turbulence-induced water vapour fluctuations, which maintain polydispersity during the initial condensation driven growth and facilitate subsequent growth by differential sedimentation driven coalescence. The collision rate of droplets is strongly influenced by non-continuum hydrodynamics and so the size evolution beyond the condensation regime is found to be very sensitive to the mean free path of air. Turbulence-induced inertial clustering leads to a moderate enhancement in the growth rate but the intermittency of the turbulent shear rate does not change the coalescence rate significantly. The coupled influence of all these phenomena is evaluated by evolving a large number of droplets within an adiabatically rising parcel of air using a Monte Carlo scheme that captures turbulent intermittency and mixing.
title The effect of turbulence, gravity, and non-continuum hydrodynamic interactions on the drop size distribution in clouds
topic Fluid Dynamics
url https://arxiv.org/abs/2501.01086