HR: 16:45h
AN: A24A-04 [Abstracts]
TI: A New Fully Coupled
Meteorology-Chemistry-Aerosol Model and Initial Results for Houston, Texas
AU: Fast, J D
EM: jerome.fast@pnl.gov
AF: Pacific Northwest National Laboratory, P.O. Box 999, K9-30, Richland, WA 99352
United States
AU: * Gustafson, W I
EM: william.gustafson@pnl.gov
AF: Pacific Northwest National Laboratory, P.O. Box 999, K9-30, Richland, WA 99352
United States
AU: Easter, R C
EM: richard.easter@pnl.gov
AF: Pacific Northwest National Laboratory, P.O. Box 999, K9-30, Richland, WA 99352
United States
AU: Chapman, E G
EM: elaine.chapman@pnl.gov
AF: Pacific Northwest National Laboratory, P.O. Box 999, K9-30, Richland, WA 99352
United States
AU: Barnard, J C
EM: james.barnard@pnl.gov
AF: Pacific Northwest National Laboratory, P.O. Box 999, K9-30, Richland, WA 99352
United States
AU: Zaveri, R A
EM: rahul.zaveri@pnl.gov
AF: Pacific Northwest National Laboratory, P.O. Box 999, K9-30, Richland, WA 99352
United States
AU: Grell, G A
EM: Georg.A.Grell@noaa.gov
AF: NOAA Research-Forecast Systems Laboratory, 325 Broadway, Boulder, CO 80305
United States
AB:
Coupling of the Weather Research and Forecasting (WRF) version 2 regional meteorological model with the aerosol-chemistry
mechanisms developed at Pacific Northwest National Laboratory is complete, and initial demonstration runs have been
performed. WRF is the latest atmospheric sciences community model and the model framework enables advances in chemistry and
aerosols to be tested and compared. This new model is well suited for simulating pollutants emitted from mega-cities through
its ability to simultaneously simulate the local, regional, and synoptic impacts of aerosols. The aerosol-chemistry
mechanisms that have been added are the Carbon Bond Mechanism-Zaveri photochemical (CBM-Z) module, the Model for Simulating
Aerosol Interactions and Chemistry (MOSAIC) module, and the Fast-J photolysis module. These components are fully coupled and
allow for on-line feedbacks between the meteorology, chemistry, aerosol, and radiative portions of the model. Aerosol
feedbacks currently include the direct radiative effect, while the indirect effect of aerosols on clouds is under development
and will be available at a future date. Mesh refinement, via nesting, allows higher resolution grids to be centered on areas
with high emissions and strong gradients in atmospheric pollutants, whereas coarser outer nests can cover surrounding areas
that are necessary for developing accurate meteorological conditions within the model as well as for determining long-range
transport of trace gases and particulates.
Demonstration runs have been performed, centered on Houston, Texas for the period 28 August through 2 September 2000. The
simulated period corresponds with the 2000 Texas Air Quality Study (TexAQS) field campaign and thus has extensive
meteorological, chemical, and aerosol measurements for verifying the model results. The domain configuration consists of
three grids with horizontal grid spacings of 16, 4, and 1.33 km. Emission rates of trace gases and particulates are derived
from the Texas Commission on Environmental Quality and from the Environmental Protection Agency?s National Emission Trend
inventory. Results will be presented showing the radiative effect of the aerosol burden produced by the primary particulates
released from the Houston metropolitan area on regional temperature distributions as well as an evaluation of the predicted
concentration and spatial distribution
DE: 0305 Aerosols and particles (0345, 4801)
DE: 0325 Evolution of the atmosphere
DE: 0345 Pollution--urban and regional (0305)
SC: Atmospheric Sciences [A]
MN: 2004 AGU Fall Meeting