HR: 0800h
AN: GC51D-1079 [Abstracts]
TI: Influence of Global Change and Asian Emissions on Regional Air Quality in the Pacific
Northwest
AU: * Chen, J
EM: chimou@mail.wsu.edu
AF: Washington State University, Laboratory for Atmospheric Research
Department of Civil and Environmental Engineering, Pullman, WA 99163
United States
AU: Avise, J
EM: jeremy_avise@wsu.edu
AF: Washington State University, Laboratory for Atmospheric Research
Department of Civil and Environmental Engineering, Pullman, WA 99163
United States
AU: Lamb, B
EM: blamb@wsu.edu
AF: Washington State University, Laboratory for Atmospheric Research
Department of Civil and Environmental Engineering, Pullman, WA 99163
United States
AU: Wiedinmyer, C
EM: christin@ucar.edu
AF: National Center for Atmospheric Research, Atmospheric Chemistry Division, Boulder, CO 80305
United States
AU: Guenther, A
EM: guenther@ucar.edu
AF: National Center for Atmospheric Research, Atmospheric Chemistry Division, Boulder, CO 80305
United States
AU: Lamarque, J
EM: lamar@ucar.edu
AF: National Center for Atmospheric Research, Atmospheric Chemistry Division, Boulder, CO 80305
United States
AU: Salathe, E
EM: salathe@washington.edu
AF: University of Washington, Department of Atmospheric Sciences, Seattle, WA 98195
United States
AU: Mass, C
EM: cliff@atmos.washington.edu
AF: University of Washington, Department of Atmospheric Sciences, Seattle, WA 98195
United States
AB:
Global climate change, land use changes and population growth are interrelated forces that can cause significant changes in
future air quality in the US. In the Pacific Northwest, air quality now and in the future can also be exacerbated by the
impact of polluted air masses transported from Asia across the Pacific to the US. In this work we address the issue of what
role current Asian emissions play on air quality in the Northwest, and how global change might influence the impact of future
Asian emissions. To do this we employ a multi-scale numerical modeling system, which is comprised of global scale and
nested regional models. On the global scale we employ the NCAR/DOE Parallel Climate Model (PCM) and the NCAR MOZART-2
chemical transport model. The MM5/SMOKE/CMAQ regional modeling system is used to refine the global scale model outputs to
regional scale air quality.
Global and regional model simulations are conducted for a future period (2045 - 2055) and compared to base case simulations
of contemporary climate conditions (1990 - 2000). For contemporary simulations, US anthropogenic emissions are based on the
National Emissions trend 1999 (NEI99) dataset, while future year anthropogenic emissions are projected using emission growth
factors from EPA's the Economic Growth Analysis System (EGAS) along with IPCC scenarios. Biogenic emissions are treated
using the new biogenic emissions Model of Emissions of Gases and Aerosols from Nature (MEGAN). In this paper, we present a
preliminary analysis of the results of contemporary, long term simulations in terms of the impact of Asian emissions on
Northwest air quality, and we examine the results of MOZART global simulations in terms of changes in boundary conditions for
regional simulations in the Northwest for future periods.
DE: 1610 Atmosphere (0315, 0325)
DE: 1615 Biogeochemical processes (4805)
DE: 0305 Aerosols and particles (0345, 4801)
DE: 0315 Biosphere/atmosphere interactions
DE: 0345 Pollution--urban and regional (0305)
SC: Global Climate Change [GC]
MN: 2004 AGU Fall Meeting