Development and evaluation of Chemistry‐Aerosol‐Climate Model CAM5‐Chem‐MAM7‐MOSAIC: global atmospheric distribution and radiative effects of nitrate aerosol

An advanced aerosol treatment, with a focus on semivolatile nitrate formation, is introduced into the Community Atmosphere Model version 5 with interactive chemistry (CAM5‐chem) by coupling the Model for Simulating Aerosol Interactions and Chemistry (MOSAIC) with the 7‐mode Modal Aerosol Module (MAM7). An important feature of MOSAIC is dynamic partitioning of all condensable gases to the different fine and coarse mode aerosols, as governed by mode‐resolved thermodynamics and heterogeneous chemical reactions. Applied in the free‐running mode from 1995 to 2005 with prescribed historical climatological conditions, the model simulates global distributions of sulfate, nitrate, and ammonium in good agreement with observations and previous studies. Inclusion of nitrate resulted in ∼10% higher global average accumulation mode number concentrations, indicating enhanced growth of Aitken mode aerosols from nitrate formation. While the simulated accumulation mode nitrate burdens are high over the anthropogenic source regions, the sea‐salt and dust modes respectively constitute about 74% and 17% of the annual global average nitrate burden. Regional clear‐sky shortwave radiative cooling of up to −5 W m−2 due to nitrate is seen, with a much smaller global average cooling of −0.05 W m−2. Significant enhancements in regional cloud condensation nuclei (at 0.1% supersaturation) and cloud droplet number concentrations are also attributed to nitrate, causing an additional global average shortwave cooling of −0.8 W m−2. Taking into consideration of changes in both longwave and shortwave radiation under all‐sky conditions, the net change in the top of the atmosphere radiative fluxes induced by including nitrate aerosol is −0.7 W m−2.

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Author Zaveri, Rahul A.
Easter, Richard C.
Singh, Balwinder
Wang, Hailong
Lu, Zheng
Tilmes, Simone
Emmons, Louisa K.
Vitt, Francis
Zhang, Rudong
Liu, Xiaohong
Ghan, Steven J.
Rasch, Philip J.
Publisher UCAR/NCAR - Library
Publication Date 2021-04-01T00:00:00
Digital Object Identifier (DOI) Not Assigned
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Topic Category geoscientificInformation
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Metadata Date 2023-08-18T18:13:54.947410
Metadata Record Identifier edu.ucar.opensky::articles:24268
Metadata Language eng; USA
Suggested Citation Zaveri, Rahul A., Easter, Richard C., Singh, Balwinder, Wang, Hailong, Lu, Zheng, Tilmes, Simone, Emmons, Louisa K., Vitt, Francis, Zhang, Rudong, Liu, Xiaohong, Ghan, Steven J., Rasch, Philip J.. (2021). Development and evaluation of Chemistry‐Aerosol‐Climate Model CAM5‐Chem‐MAM7‐MOSAIC: global atmospheric distribution and radiative effects of nitrate aerosol. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d7xs5zrs. Accessed 18 March 2025.

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