4.6 Article

Realism of Lagrangian Large Eddy Simulations Driven by Renalysis Meteorology: Tracking a Pocket of Open Cells Under a Biomass Burning Aerosol Layer

Journal

Publisher

AMER GEOPHYSICAL UNION
DOI: 10.1029/2021MS002664

Keywords

Lagrangian large eddy simulations; boundary layer clouds; stratocumulus transitions; mesoscale organization

Funding

  1. UK Natural Environment Research Council (NERC) [NE/L013479/1]
  2. Met Office
  3. U.S. National Oceanic and Atmospheric Administration Climate Program Office
  4. NOAA's Climate Goal
  5. European Research Council Project constRaining the EffeCts of Aerosols on Precipitation under the European Union's Horizon 2020 Research and Innovation Program [724602]

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This study presents an approach to drive Lagrangian large eddy simulation (LES) of boundary layer clouds with reanalysis data, successfully simulating the morphological evolution of observed clouds and capturing the timing of cloud state transition. The simulations reproduce cloud microphysical properties reasonably well, but overestimate certain parameters in the precipitating state.
An approach to drive Lagrangian large eddy simulation (LES) of boundary layer clouds with reanalysis data is presented and evaluated using satellite (Spinning Enhanced Visible and Infrared Imager, SEVIRI) and aircraft (Cloud-Aerosol-Radiation Interactions and Forcing, CLARIFY) measurements. The simulations follow trajectories of the boundary layer flow. They track the formation and evolution of a pocket of open cells (POC) underneath a biomass burning aerosol layer in the free troposphere. The simulations reproduce the evolution of observed stratocumulus cloud morphology, cloud optical depth, and cloud drop effective radius, and capture the timing of the cloud state transition from closed to open cells seen in the satellite imagery on the three considered trajectories. They reproduce a biomass burning aerosol layer identified by the in-situ aircraft measurements above the inversion of the POC. Entrainment of aerosol from the biomass burning layer into the POC is limited to the extent of having no impact on cloud- or boundary layer properties, in agreement with the CLARIFY observations. The two-moment bin microphysics scheme used in the simulations reproduces the in-situ cloud microphysical properties reasonably well. A two-moment bulk microphysics scheme reproduces the satellite observations in the non-precipitating closed-cell state, but overestimates liquid water path and cloud optical depth in the precipitating open-cell state due to insufficient surface precipitation. A boundary layer cold and dry bias occurring in LES can be counteracted by reducing the grid aspect ratio and by tightening the large scale wind speed nudging towards the surface.

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