TY - JOUR
T1 - Idealized simulations of a squall line from the MC3E field campaign applying three bin microphysics schemes
T2 - Dynamic and thermodynamic structure
AU - Xue, Lulin
AU - Fan, Jiwen
AU - Lebo, Zachary J.
AU - Wu, Wei
AU - Morrison, Hugh
AU - Grabowski, Wojciech W.
AU - Chu, Xia
AU - Geresdi, István
AU - North, Kirk
AU - Stenz, Ronald
AU - Gao, Yang
AU - Lou, Xiaofeng
AU - Bansemer, Aaron
AU - Heymsfield, Andrew J.
AU - McFarquhar, Greg M.
AU - Rasmussen, Roy M.
N1 - Publisher Copyright:
© 2017 American Meteorological Society.
PY - 2017/12/1
Y1 - 2017/12/1
N2 - The squall-line event on 20 May 2011, during the Midlatitude Continental Convective Clouds (MC3E) field campaign has been simulated by three bin (spectral) microphysics schemes coupled into the Weather Research and Forecasting (WRF) Model. Semi-idealized three-dimensional simulations driven by temperature and moisture profiles acquired by a radiosonde released in the preconvection environment at 1200 UTC in Morris, Oklahoma, show that each scheme produced a squall line with features broadly consistent with the observed storm characteristics. However, substantial differences in the details of the simulated dynamic and thermodynamic structure are evident. These differences are attributed to different algorithms and numerical representations of microphysical processes, assumptions of the hydrometeor processes and properties, especially ice particle mass, density, and terminal velocity relationships with size, and the resulting interactions between the microphysics, cold pool, and dynamics. This study shows that different bin microphysics schemes, designed to be conceptually more realistic and thus arguably more accurate than bulk microphysics schemes, still simulate a wide spread of microphysical, thermodynamic, and dynamic characteristics of a squall line, qualitatively similar to the spread of squall-line characteristics using various bulk schemes. Future work may focus on improving the representation of ice particle properties in bin schemes to reduce this uncertainty and using the similar assumptions for all schemes to isolate the impact of physics from numerics.
AB - The squall-line event on 20 May 2011, during the Midlatitude Continental Convective Clouds (MC3E) field campaign has been simulated by three bin (spectral) microphysics schemes coupled into the Weather Research and Forecasting (WRF) Model. Semi-idealized three-dimensional simulations driven by temperature and moisture profiles acquired by a radiosonde released in the preconvection environment at 1200 UTC in Morris, Oklahoma, show that each scheme produced a squall line with features broadly consistent with the observed storm characteristics. However, substantial differences in the details of the simulated dynamic and thermodynamic structure are evident. These differences are attributed to different algorithms and numerical representations of microphysical processes, assumptions of the hydrometeor processes and properties, especially ice particle mass, density, and terminal velocity relationships with size, and the resulting interactions between the microphysics, cold pool, and dynamics. This study shows that different bin microphysics schemes, designed to be conceptually more realistic and thus arguably more accurate than bulk microphysics schemes, still simulate a wide spread of microphysical, thermodynamic, and dynamic characteristics of a squall line, qualitatively similar to the spread of squall-line characteristics using various bulk schemes. Future work may focus on improving the representation of ice particle properties in bin schemes to reduce this uncertainty and using the similar assumptions for all schemes to isolate the impact of physics from numerics.
KW - Cloud microphysics
KW - Dynamics
KW - Squall lines
KW - Thermodynamics
UR - https://www.scopus.com/pages/publications/85040467332
U2 - 10.1175/MWR-D-16-0385.1
DO - 10.1175/MWR-D-16-0385.1
M3 - Article
AN - SCOPUS:85040467332
SN - 0027-0644
VL - 145
SP - 4789
EP - 4812
JO - Monthly Weather Review
JF - Monthly Weather Review
IS - 12
ER -