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Comparison of Flow-Dependent and Static Error Correlation Models in the DAO Ozone Data Assimilation SystemIn a data assimilation system the forecast error covariance matrix governs the way in which the data information is spread throughout the model grid. Implementation of a correct method of assigning covariances is expected to have an impact on the analysis results. The simplest models assume that correlations are constant in time and isotropic or nearly isotropic. In such models the analysis depends on the dynamics only through assumed error standard deviations. In applications to atmospheric tracer data assimilation this may lead to inaccuracies, especially in regions with strong wind shears or high gradient of potential vorticity, as well as in areas where no data are available. In order to overcome this problem we have developed a flow-dependent covariance model that is based on short term evolution of error correlations. The presentation compares performance of a static and a flow-dependent model applied to a global three- dimensional ozone data assimilation system developed at NASA s Data Assimilation Office. We will present some results of validation against WMO balloon-borne sondes and the Polar Ozone and Aerosol Measurement (POAM) III instrument. Experiments show that allowing forecast error correlations to evolve with the flow results in positive impact on assimilated ozone within the regions where data were not assimilated, particularly at high latitudes in both hemispheres and in the troposphere. We will also discuss statistical characteristics of both models; in particular we will argue that including evolution of error correlations leads to stronger internal consistency of a data assimilation ,
Document ID
20030053186
Acquisition Source
Goddard Space Flight Center
Document Type
Conference Paper
Authors
Wargan, K.
Stajner, I.
Pawson, S.
Date Acquired
August 21, 2013
Publication Date
January 1, 2003
Subject Category
Meteorology And Climatology
Meeting Information
Meeting: SPARC Data Assimilation Workshop
Location: Florence
Country: Italy
Start Date: June 4, 2003
End Date: June 6, 2003
Sponsors: Environmental Research Inst. of Michigan
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.

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