Assessing the diurnal cycle of precipitation in a multi-scale climate model

A promising result that has emerged from the new Multi-scale Modeling Framework (MMF) approach to atmospheric modeling is a global improvement in the daily timing of peak precipitation over the continents, which is suggestive of improved moist dynamics at diurnal timescales overall. We scrutinize th...

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Main Authors: Michael S Pritchard, Richard Somerville
Format: Article
Language:English
Published: American Geophysical Union (AGU) 2009-10-01
Series:Journal of Advances in Modeling Earth Systems
Subjects:
Online Access:http://james.agu.org/index.php/JAMES/article/view/v1n12
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author Michael S Pritchard
Richard Somerville
author_facet Michael S Pritchard
Richard Somerville
author_sort Michael S Pritchard
collection DOAJ
description A promising result that has emerged from the new Multi-scale Modeling Framework (MMF) approach to atmospheric modeling is a global improvement in the daily timing of peak precipitation over the continents, which is suggestive of improved moist dynamics at diurnal timescales overall. We scrutinize the simulated seasonal composite diurnal cycle of precipitation in an MMF developed by the Center for Multiscale Modeling of Atmospheric Processes (CMMAP) using a comprehensive suite of diurnal cycle diagnostics including traditional harmonic analysis, and non-traditional diagnostics such as the broadness of the peak precipitation in the mean summer day, reduced dimension transect analysis, and animations of the full spatial and temporal variability of the composite mean summer day. Precipitation in the MMF is evaluated against multi-satellite merged satellite data and a control simulation with a climate model that employs conventional cloud and boundary layer parameterizations. Our analysis highlights several improved features of the diurnal cycle of precipitation in the multi-scale climate model: It is less sinusoidal over the most energetic diurnal rainfall regimes, more horizontally inhomogeneous within continents and oceans, and more faithful to observed structural transitions in the composite diurnal cycle chronology straddling coastlines than the conventional climate model. A regional focus on North America links a seasonal summer dry bias over the continental United States in the CMMAP MMF at T42 resolution to its inability to capture diurnally propagating precipitation signals associated with organized convection in the lee of the Rockies. The chronology of precipitation events elsewhere in the vicinity of North America is improved in the MMF, especially over sea breeze circulation regions along the eastern seaboard and the Gulf of Mexico, as well as over the entirety of the Gulf Stream. Comparison of the convective heating and moistening suggests that improvements in the MMF coastal ocean diurnal rainfall may be a result of a local moist dynamical response to the improved representation of energetic diurnal forcing over adjacent land.<br />
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spelling doaj.art-80a526a1ba3947bea2b315c29b508c4a2022-12-21T23:37:55ZengAmerican Geophysical Union (AGU)Journal of Advances in Modeling Earth Systems1942-24662009-10-011Art. #1216 pp.10.3894/JAMES.2009.1.12Assessing the diurnal cycle of precipitation in a multi-scale climate modelMichael S PritchardRichard SomervilleA promising result that has emerged from the new Multi-scale Modeling Framework (MMF) approach to atmospheric modeling is a global improvement in the daily timing of peak precipitation over the continents, which is suggestive of improved moist dynamics at diurnal timescales overall. We scrutinize the simulated seasonal composite diurnal cycle of precipitation in an MMF developed by the Center for Multiscale Modeling of Atmospheric Processes (CMMAP) using a comprehensive suite of diurnal cycle diagnostics including traditional harmonic analysis, and non-traditional diagnostics such as the broadness of the peak precipitation in the mean summer day, reduced dimension transect analysis, and animations of the full spatial and temporal variability of the composite mean summer day. Precipitation in the MMF is evaluated against multi-satellite merged satellite data and a control simulation with a climate model that employs conventional cloud and boundary layer parameterizations. Our analysis highlights several improved features of the diurnal cycle of precipitation in the multi-scale climate model: It is less sinusoidal over the most energetic diurnal rainfall regimes, more horizontally inhomogeneous within continents and oceans, and more faithful to observed structural transitions in the composite diurnal cycle chronology straddling coastlines than the conventional climate model. A regional focus on North America links a seasonal summer dry bias over the continental United States in the CMMAP MMF at T42 resolution to its inability to capture diurnally propagating precipitation signals associated with organized convection in the lee of the Rockies. The chronology of precipitation events elsewhere in the vicinity of North America is improved in the MMF, especially over sea breeze circulation regions along the eastern seaboard and the Gulf of Mexico, as well as over the entirety of the Gulf Stream. Comparison of the convective heating and moistening suggests that improvements in the MMF coastal ocean diurnal rainfall may be a result of a local moist dynamical response to the improved representation of energetic diurnal forcing over adjacent land.<br />http://james.agu.org/index.php/JAMES/article/view/v1n12Earth System Modeling, Climate Modeling, Multiscale Climate Modeling
spellingShingle Michael S Pritchard
Richard Somerville
Assessing the diurnal cycle of precipitation in a multi-scale climate model
Journal of Advances in Modeling Earth Systems
Earth System Modeling, Climate Modeling, Multiscale Climate Modeling
title Assessing the diurnal cycle of precipitation in a multi-scale climate model
title_full Assessing the diurnal cycle of precipitation in a multi-scale climate model
title_fullStr Assessing the diurnal cycle of precipitation in a multi-scale climate model
title_full_unstemmed Assessing the diurnal cycle of precipitation in a multi-scale climate model
title_short Assessing the diurnal cycle of precipitation in a multi-scale climate model
title_sort assessing the diurnal cycle of precipitation in a multi scale climate model
topic Earth System Modeling, Climate Modeling, Multiscale Climate Modeling
url http://james.agu.org/index.php/JAMES/article/view/v1n12
work_keys_str_mv AT michaelspritchard assessingthediurnalcycleofprecipitationinamultiscaleclimatemodel
AT richardsomerville assessingthediurnalcycleofprecipitationinamultiscaleclimatemodel