TY - JOUR
T1 - Global Microphysical Sensitivity of Superparameterized Precipitation Extremes
AU - Charn, Alexander B.
AU - Collins, William D.
AU - Parishani, Hossein
AU - Risser, Mark D.
N1 - Data Availability Statement:
Tropical Rainfall Measuring Mission data (TMPA Precipitation L3 1 day 0.25° × 0.25° V7) provided by the Goddard Earth Sciences Data and Information Services Center (GES DISC). Global Precipitation Climatology Project data (One-Degree Daily Version 1.3) provided by NCAR at ftp://ftp.cgd.ucar.edu/archive/PRECIP/. The SPCAM model can be accessed at https://doi.org/10.5281/zenodo.3727515. Model data needed to reproduce the figures can be found at https://portal.nersc.gov/project/m1517/cascade/charn2020_spcam_microphys/. The authors would like to thank Travis O'Brien for providing the ILIAD software.
PY - 2021/5
Y1 - 2021/5
N2 - A recent study found statistically significant differences in extreme precipitation distributions over the contiguous United States (CONUS) when changing the microphysics scheme in a superparameterized global climate model. Here, we repeat the analysis globally and similarly find that differences are widespread when varying the number of predicted moments in the microphysics parameterization, but not when comparing variants of the double-moment scheme. However, contrary to the previous study in which differences largely disappeared over CONUS when 5-day simulations were conducted, we found that the signal in these shorter integrations remains within the tropics, implying a direct local effect of microphysics on precipitation extremes in these regions. The effect on precipitation is traced back to changes in vertical velocity profiles changes that are then amplified in the climatological simulations compared to the 5-day ones. Finally, the superparameterized extremes, regardless of the microphysics scheme, are shown to be larger than those from the Global Precipitation Climatology Project One-Degree Daily data set and generally smaller than those from the Tropical Rainfall Measuring Mission 3B42 data set.
AB - A recent study found statistically significant differences in extreme precipitation distributions over the contiguous United States (CONUS) when changing the microphysics scheme in a superparameterized global climate model. Here, we repeat the analysis globally and similarly find that differences are widespread when varying the number of predicted moments in the microphysics parameterization, but not when comparing variants of the double-moment scheme. However, contrary to the previous study in which differences largely disappeared over CONUS when 5-day simulations were conducted, we found that the signal in these shorter integrations remains within the tropics, implying a direct local effect of microphysics on precipitation extremes in these regions. The effect on precipitation is traced back to changes in vertical velocity profiles changes that are then amplified in the climatological simulations compared to the 5-day ones. Finally, the superparameterized extremes, regardless of the microphysics scheme, are shown to be larger than those from the Global Precipitation Climatology Project One-Degree Daily data set and generally smaller than those from the Tropical Rainfall Measuring Mission 3B42 data set.
KW - community atmosphere model
KW - extreme precipitation
KW - ILIAD
KW - microphysics
KW - superparameterization
KW - tropical rainfall measuring mission
UR - https://www.scopus.com/pages/publications/85106896680
U2 - 10.1029/2020EA001308
DO - 10.1029/2020EA001308
M3 - Article
AN - SCOPUS:85106896680
SN - 2333-5084
VL - 8
JO - Earth and Space Science
JF - Earth and Space Science
IS - 5
M1 - e2020EA001308
ER -