Modified NAM Microphysics for Forecasts of Deep Convective StormsSource: Monthly Weather Review:;2018:;volume 146:;issue 012::page 4115DOI: 10.1175/MWR-D-17-0277.1Publisher: American Meteorological Society
Abstract: AbstractThe Ferrier?Aligo (FA) microphysics scheme has been running operationally in the National Centers for Environmental Prediction (NCEP) North American Mesoscale Forecast System (NAM) since August 2014. It was developed to improve forecasts of deep convection in the NAM contiguous United States (CONUS) nest, and it replaces previous versions of the NAM microphysics. The FA scheme is the culmination of extensive microphysical scheme sensitivity experiments made over nearly a dozen warm- and cool-season severe weather cases, as well as an extensive real-time testing in a full, system-wide developmental version of the NAM. While the FA scheme advects each hydrometeor species separately, it was the mass-weighted rime factor (RF) that allowed rimed ice to be advected to very cold temperatures aloft and improved the vertical structure of deep convection. Rimed ice fall speeds were reduced in order to offset an increase in bias of heavy precipitation as a consequence of the mass-weighted RF advection. The FA scheme also incorporated findings from 3-km model runs using the Thompson scheme, including 1) improved closure assumptions for large precipitating ice that targeted the convective and anvil regions of storms, 2) a new diagnostic calculation of radar reflectivity from rimed ice in association with intense convection, and 3) a variable rain intercept parameter that reduced widespread spurious weak reflectivity from shallow boundary layer clouds and increased stratiform rainfall.
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| contributor author | Aligo, Eric A. | |
| contributor author | Ferrier, Brad | |
| contributor author | Carley, Jacob R. | |
| date accessioned | 2019-09-19T10:04:27Z | |
| date available | 2019-09-19T10:04:27Z | |
| date copyright | 5/8/2018 12:00:00 AM | |
| date issued | 2018 | |
| identifier other | mwr-d-17-0277.1.pdf | |
| identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4261236 | |
| description abstract | AbstractThe Ferrier?Aligo (FA) microphysics scheme has been running operationally in the National Centers for Environmental Prediction (NCEP) North American Mesoscale Forecast System (NAM) since August 2014. It was developed to improve forecasts of deep convection in the NAM contiguous United States (CONUS) nest, and it replaces previous versions of the NAM microphysics. The FA scheme is the culmination of extensive microphysical scheme sensitivity experiments made over nearly a dozen warm- and cool-season severe weather cases, as well as an extensive real-time testing in a full, system-wide developmental version of the NAM. While the FA scheme advects each hydrometeor species separately, it was the mass-weighted rime factor (RF) that allowed rimed ice to be advected to very cold temperatures aloft and improved the vertical structure of deep convection. Rimed ice fall speeds were reduced in order to offset an increase in bias of heavy precipitation as a consequence of the mass-weighted RF advection. The FA scheme also incorporated findings from 3-km model runs using the Thompson scheme, including 1) improved closure assumptions for large precipitating ice that targeted the convective and anvil regions of storms, 2) a new diagnostic calculation of radar reflectivity from rimed ice in association with intense convection, and 3) a variable rain intercept parameter that reduced widespread spurious weak reflectivity from shallow boundary layer clouds and increased stratiform rainfall. | |
| publisher | American Meteorological Society | |
| title | Modified NAM Microphysics for Forecasts of Deep Convective Storms | |
| type | Journal Paper | |
| journal volume | 146 | |
| journal issue | 12 | |
| journal title | Monthly Weather Review | |
| identifier doi | 10.1175/MWR-D-17-0277.1 | |
| journal fristpage | 4115 | |
| journal lastpage | 4153 | |
| tree | Monthly Weather Review:;2018:;volume 146:;issue 012 | |
| contenttype | Fulltext |