Description of the uEMEP_v5 downscaling approach for the EMEP MSC-W chemistry transport model
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Published:2020-12-11
Issue:12
Volume:13
Page:6303-6323
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ISSN:1991-9603
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Container-title:Geoscientific Model Development
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language:en
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Short-container-title:Geosci. Model Dev.
Author:
Denby Bruce Rolstad, Gauss Michael, Wind PeterORCID, Mu Qing, Grøtting Wærsted Eivind, Fagerli Hilde, Valdebenito Alvaro, Klein Heiko
Abstract
Abstract. A description of the new air quality downscaling model –
the urban EMEP (uEMEP) and its combination with the EMEP MSC-W model (European Monitoring and Evaluation Programme Meteorological Synthesising Centre West) – is presented. uEMEP is based on well-known Gaussian modelling principles. The
uniqueness of the system is in its combination with the EMEP MSC-W model and
the “local fraction” calculation contained within it. This allows the uEMEP
model to be imbedded in the EMEP MSC-W model and downscaling can be carried
out anywhere within the EMEP model domain, without any double counting of
emissions, if appropriate proxy data are available that describe the spatial
distribution of the emissions. This makes the model suitable for high-resolution
calculations, down to 50 m, over entire countries. An example
application, the Norwegian air quality forecasting and assessment system, is
described where the entire country is modelled at a resolution of between
250 and 50 m. The model is validated against all available monitoring data,
including traffic sites, in Norway. The results of the validation show good
results for NO2, which has the best known emissions, and moderately
good for PM10 and PM2.5. In Norway, the largest contributor to PM,
even in cities, is long-range transport followed by road dust and domestic
heating emissions. These contributors to PM are more difficult to quantify
than NOx exhaust emission from traffic, which is the major contributor
to NO2 concentrations. In addition to the validation results, a number
of verification and sensitivity results are summarised. One verification
showed that single annual mean calculations with a rotationally symmetric
dispersion kernel give very similar results to the average of an entire year
of hourly calculations, reducing the runtime for annual means by 4 orders
of magnitude. The uEMEP model, in combination with EMEP MSC-W model,
provides a new tool for assessing local-scale concentrations and exposure
over large regions in a consistent and homogenous way and is suitable for
large-scale policy applications.
Publisher
Copernicus GmbH
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