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April 24, 2026Atmospheric chemistry and physics1 citationsOpen Access

Aging of droplet size distribution in stratocumulus clouds: regimes of droplet size distribution evolution

JLJung-Sub LimFHFabian Hoffmann

Key Points

  • The research aims to clarify how droplet size distribution in stratocumulus clouds evolves under different conditions of evaporation and mixing.
  • Utilized large-eddy simulations coupled with a Lagrangian cloud model to analyze droplet size distribution.
  • Investigated two primary regimes: adiabatic growth and entrainment–descent during evaporation.
  • Analyzed the transition from inhomogeneous to homogeneous mixing using the Damköhler number.
  • Identified that droplet size distribution evolves through two regimes influenced by entrainment and evaporation processes.
  • Demonstrated that the entrainment history of cloud parcels dictates their mixing characteristics, with strong entrainment leading to broader distributions.
  • Proposed an analytical–empirical formulation capturing dispersion during growth and evaporation.

Abstract

Abstract. The climatic impact of maritime stratocumulus clouds depends on the evolution of their droplet size distribution (DSD), yet the mechanisms controlling their variability during evaporation remain poorly constrained. Using large-eddy simulations coupled with a Lagrangian cloud model, we demonstrate that the DSD evolution follows two primary regimes: adiabatic growth and entrainment–descent. Within the latter, DSD evolution follows divergent pathways determined by the parcel's entrainment history: strong entrainment-driven dilution near the cloud top causes rapid broadening, whereas large-scale boundary-layer descent leads to gradual evaporation. Our Lagrangian analysis of the Damköhler number reveals that the commonly observed vertical transition from inhomogeneous to homogeneous mixing signatures does not necessarily reflect a change in the local mixing mechanism. Instead, it results from the vertical sorting of parcels with divergent histories. Parcels subject to strong entrainment retain inhomogeneous signatures throughout their descent, while those experiencing minimal dilution exhibit homogeneous-like characteristics regardless of altitude. This distinction helps resolve ambiguities in interpreting in situ observations where mixing history is often unknown. Finally, we propose a combined analytical–empirical formulation that captures the relative dispersion during both growth and evaporation.

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Cite This Study

Lim et al. (2026) studied this question.

synapsesocial.com/papers/69eb09c9553a5433e34b414dhttps://doi.org/10.5194/acp-26-5427-2026
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