Numerical Dust Storm Simulation Using Modified Geographical Domain and Data Assimilation: 3DVAR and 4DVAR (WRF-Chem/WRFDA)

Dust storms have severe environmental, economic, health, weather, and climate change impacts. A severe dust storm that hit Egypt on 22 January 2004 was selected as a case study to establish an accurate numerical model to simulate dust storms over Egypt using the Weather Research Forecast with a chem...

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Main Authors: Muhammed Eltahan, Sabah Alahmadi
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8782820/
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spelling doaj-d49b140e77d24b94bcc7d277e7286cf02021-04-05T17:09:38ZengIEEEIEEE Access2169-35362019-01-01712898012898910.1109/ACCESS.2019.29308128782820Numerical Dust Storm Simulation Using Modified Geographical Domain and Data Assimilation: 3DVAR and 4DVAR (WRF-Chem/WRFDA)Muhammed Eltahan0https://orcid.org/0000-0003-2322-8123Sabah Alahmadi1Aerospace Engineering Department, Faculty of Engineering, Cairo University, Giza, EgyptNational Satellite Technology Center, Space and Aeronautics Research Institute, King Abdulaziz City for Science and Technology, Riyadh, Saudi ArabiaDust storms have severe environmental, economic, health, weather, and climate change impacts. A severe dust storm that hit Egypt on 22 January 2004 was selected as a case study to establish an accurate numerical model to simulate dust storms over Egypt using the Weather Research Forecast with a chemistry module (WRF-Chem). Two simulation setups using WRF-Chem were conducted using two geographic domains: the first exclusively included dust sources within Egypt, while the second included an external dust source, the Bodélé Depression in southwestern Chad. The first simulation was only able to capture the core of the dust plume from the internal dust source Egyptian Qattara Depression, but the second was able to capture the spatial dust distribution from both the Qattara Depression and the Bodélé Depression. Moreover, the results from our second simulation model had less errors than comparable results using moderate resolution imaging spectroradiometer (MODIS). We then investigated the impact of meteorological data assimilation methods using both three-dimensional and four-dimensional variational assimilation algorithms to simulate the aerosol optical depth of the dust storm using weather research forecast data assimilation (WRFDA) framework.https://ieeexplore.ieee.org/document/8782820/Dust stormWRF-Chemdata assimilation3DVAR4DVARMODIS
collection DOAJ
language English
format Article
sources DOAJ
author Muhammed Eltahan
Sabah Alahmadi
spellingShingle Muhammed Eltahan
Sabah Alahmadi
Numerical Dust Storm Simulation Using Modified Geographical Domain and Data Assimilation: 3DVAR and 4DVAR (WRF-Chem/WRFDA)
IEEE Access
Dust storm
WRF-Chem
data assimilation
3DVAR
4DVAR
MODIS
author_facet Muhammed Eltahan
Sabah Alahmadi
author_sort Muhammed Eltahan
title Numerical Dust Storm Simulation Using Modified Geographical Domain and Data Assimilation: 3DVAR and 4DVAR (WRF-Chem/WRFDA)
title_short Numerical Dust Storm Simulation Using Modified Geographical Domain and Data Assimilation: 3DVAR and 4DVAR (WRF-Chem/WRFDA)
title_full Numerical Dust Storm Simulation Using Modified Geographical Domain and Data Assimilation: 3DVAR and 4DVAR (WRF-Chem/WRFDA)
title_fullStr Numerical Dust Storm Simulation Using Modified Geographical Domain and Data Assimilation: 3DVAR and 4DVAR (WRF-Chem/WRFDA)
title_full_unstemmed Numerical Dust Storm Simulation Using Modified Geographical Domain and Data Assimilation: 3DVAR and 4DVAR (WRF-Chem/WRFDA)
title_sort numerical dust storm simulation using modified geographical domain and data assimilation: 3dvar and 4dvar (wrf-chem/wrfda)
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description Dust storms have severe environmental, economic, health, weather, and climate change impacts. A severe dust storm that hit Egypt on 22 January 2004 was selected as a case study to establish an accurate numerical model to simulate dust storms over Egypt using the Weather Research Forecast with a chemistry module (WRF-Chem). Two simulation setups using WRF-Chem were conducted using two geographic domains: the first exclusively included dust sources within Egypt, while the second included an external dust source, the Bodélé Depression in southwestern Chad. The first simulation was only able to capture the core of the dust plume from the internal dust source Egyptian Qattara Depression, but the second was able to capture the spatial dust distribution from both the Qattara Depression and the Bodélé Depression. Moreover, the results from our second simulation model had less errors than comparable results using moderate resolution imaging spectroradiometer (MODIS). We then investigated the impact of meteorological data assimilation methods using both three-dimensional and four-dimensional variational assimilation algorithms to simulate the aerosol optical depth of the dust storm using weather research forecast data assimilation (WRFDA) framework.
topic Dust storm
WRF-Chem
data assimilation
3DVAR
4DVAR
MODIS
url https://ieeexplore.ieee.org/document/8782820/
work_keys_str_mv AT muhammedeltahan numericalduststormsimulationusingmodifiedgeographicaldomainanddataassimilation3dvarand4dvarwrfchemwrfda
AT sabahalahmadi numericalduststormsimulationusingmodifiedgeographicaldomainanddataassimilation3dvarand4dvarwrfchemwrfda
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