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A Concept of a Convection–Cloud Chamber to Study Aerosol–Cloud–Drizzle Interactions

  • Raymond A. Shaw
  • , Mikhail Ovchinnikov
  • , Arthur J. Sedlacek
  • , Fan Yang
  • , Jesse Anderson
  • , Zaid Bakri
  • , Garrett Beard
  • , Corey Bois
  • , Will Cantrell
  • , Kamal Kant Chandrakar
  • , Grant Daniels
  • , Hamed Fahandezh Sadi
  • , Richard C. Flagan
  • , Jose D. Fuentes
  • , George Gogos
  • , Graham Kaufman
  • , Kwonil Kim
  • , Pavlos Kollias
  • , Steven K. Krueger
  • , Edward P. Luke
  • Claudio Mazzoleni, Allison McComiskey, Constantine Megaridis, Arani Mukhopadhyay, Dennis Niedermeier, Anish Pal, Ilias Papailias, Manikandan Rajagopal, Yangze Ren, Grant Schlaff, Silvio Schmalfuß, John E. Shilling, Manish Shrivastava, Suryadev Pratap Singh, Frank Stratmann, Yong Meng Sua, Lois Thomas, Aaron Wang, Jae Min Yeom, Maria Zawadowicz, Jie Zhang, Zipei Zheng, Zeen Zhu, Craig Zuhlke
  • Michigan Technological University
  • Pacific Northwest National Laboratory
  • Brookhaven National Laboratory
  • University of Nebraska-Lincoln
  • University of Utah
  • National Center for Atmospheric Research
  • California Institute of Technology
  • Pennsylvania State University
  • Stony Brook University
  • University of Illinois at Chicago
  • Leibniz Institute for Tropospheric Research
  • Stevens Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Understanding and quantifying the full chain of processes from aerosol activation to drizzle formation, and the associated feedbacks to the aerosol chemical and physical proper-ties, all within a turbulent cloud are some of the toughest challenges in atmospheric chemistry and physics and are keys to the cloud–precipitation puzzle. This paper describes a concept for a new type of research facility consisting of a cloud chamber plus associated instrumentation and computational models, to explore aerosol–cloud interactions and processing, cloud optical properties, entrainment–cloud interactions, and quantitative assessment of drizzle onset. The envisioned design is for a 3 m × 3 m × 9 m chamber, such that the height is sufficient to achieve long lifetimes for aerosol processing and for significant drizzle growth by collision and coalescence. A suite of computational tools for simulating microphysical properties in the chamber provides a digital twin for designing the chamber and a range of example experiments. Theory and test results from novel remote sensing systems for exploring chemical and physical interactions and evolution of aerosols, cloud droplets, and drizzle within turbulent clouds are described. Testing of technology needed for the operation of a large-volume chamber, including aerosol generation methods and novel materials for water vapor boundary conditions, is described. Simulations suggest that spatially uniform turbulence and microphysical properties can be sustained in a steady state, with reasonable aerosol and water vapor fluxes, and that substantial drizzle can be produced through collision and coalescence of cloud droplets. Remaining challenges for more detailed engineering design and a discussion of possible first-light experiments are described.

Original languageEnglish
Pages (from-to)E1226-E1247
JournalBulletin of the American Meteorological Society
Volume107
Issue number6
DOIs
StatePublished - Jun 2026
Externally publishedYes

Keywords

  • Aerosols
  • Cloud microphysics
  • Collisions
  • Condensation
  • Instrumentation/ sensors
  • Laboratory/ physical models

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