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Sensitivity of different physics schemes in the WRF model during a West African monsoon regime

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dc.contributor.author Gbode, Imoleayo Ezekiel
dc.contributor.author Dudhia, Jimy
dc.contributor.author Ogunjobi, Kehinde Olufunso
dc.contributor.author Ajayi, Vincent
dc.date.accessioned 2020-10-29T12:36:27Z
dc.date.available 2020-10-29T12:36:27Z
dc.date.issued 2018-07
dc.identifier.citation Gbode, I.E., Dudhia, J., Ogunjobi, K.O. et al. Sensitivity of different physics schemes in the WRF model during a West African monsoon regime. Theor Appl Climatol 136, 733–751 (2019). https://doi.org/10.1007/s00704-018-2538-x en_US
dc.identifier.issn 136:733–751
dc.identifier.other https://doi.org/10.1007/s00704-018-2538-x
dc.identifier.uri http://197.159.135.214/jspui/handle/123456789/55
dc.description Research Article en_US
dc.description.abstract A 2-month (August–September) regime of the year 2007 West African monsoon (WAM) was simulated with 27 physics combinations using the Weather Research and Forecasting model at 20-km horizontal grid. The objective is to examine WAM sensitivity to parameterization of microphysical, convective, and boundary layer processes for long-term simulation. The model precipitation was evaluated against the TRMM, CMORPH, and GPCP satellite rainfall products. The surface temperature was compared against the ERA-Interim, NCEP, MERRA, and global surface air temperature, an ensemble of the three reanalysis datasets. Model skill score (MSS) computed from a synthesis of the normalized correlation coefficient, mean bias, and mean absolute error was used to rank the model performance. Results show the model adequately simulates the diurnal cycles of surface temperature than precipitation, as well as the westward propagation of intense precipitation associated with the African easterly waves. The new Grell-Freitas (nGF) cumulus parameterization scheme (CPS) outperforms its predecessor especially when combined with the Mellor-Yamada-Nakanishi-Niino 2.5 (MYNN) planetary boundary layer scheme. The new simplified Arakawa-Schubert (nSAS) and Tiedtke CPSs produced better simulation of precipitation and surface temperature, respectively. The simulation of observed peak of diurnal precipitation in nSAS and nGF highlights success made towards a more realistic representation of convective processes by the schemes. Goddard microphysics and MYNN performed better for both variables. Based on the MSS, some relatively good and poorly performing combinations for precipitation and surface temperature were identified. The optimal combinations are however not separated in a statistically significant way and, thus, could be used for longterm simulation of WAM. en_US
dc.description.sponsorship The German Federal Ministry of Education and Research (BMBF) Federal University of Technology, Akure, Nigeria en_US
dc.language.iso en en_US
dc.publisher Springer (Theoretical and Applied Climatology) en_US
dc.subject West African monsoon (WAM) en_US
dc.subject Weather Research en_US
dc.subject Forecasting model en_US
dc.subject Precipitation en_US
dc.title Sensitivity of different physics schemes in the WRF model during a West African monsoon regime en_US
dc.type Article en_US


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