Analysis of Tropospheric Carbon Monoxide and Ozone Production in East Asia

  • Lee S. H. (Satellite Operation & Application Center, Korea Aerospace Research Institute) ;
  • Choi G. H. (Satellite Operation & Application Center, Korea Aerospace Research Institute) ;
  • Lim H. S. (Satellite Operation & Application Center, Korea Aerospace Research Institute) ;
  • Lee J. H. (Satellite Operation & Application Center, Korea Aerospace Research Institute) ;
  • Seo D.C. (Satellite Operation & Application Center, Korea Aerospace Research Institute) ;
  • Jun J. N. (Satellite Operation & Application Center, Korea Aerospace Research Institute) ;
  • Jung J. H. (Satellite Operation & Application Center, Korea Aerospace Research Institute) ;
  • Kim I. S. (Satellite Operation & Application Center, Korea Aerospace Research Institute) ;
  • Kim J. (Global Environment Laboratory, Department of Atmospheric Science, Yonsei University)
  • Published : 2004.10.01

Abstract

Atmospheric carbon monoxide (CO) and ozone $(O_3)$ play the important trace gases in tropospheric chemistry, through its concentration in the troposphere directly influences the concentrations of tropospheric hydroxyl (OH). Understanding the impact of CO and $O_3$ on the global tropospheric chemistry requires measurements of the global atmospheric CO and $O_3$ distributions. This study focuses on the identification of CO and O3 released in the East Asia between March 2000 and February 2004. During the period, the MOPITT instrument onboard the Earth Observing System (EOS)-Terra platform collected extensive measurement of CO. So we have used MOPITT data at 700hPa to analyze seasonal distribution of CO concentration. And the O3 measurements for this study were Total Ozone Mapping Spectrometer (TOMS) and Dobson spectrometer provided NASA/GSFC and Yonsei University, Korea. During springtime, the CO and O3 concentrations were increased over East Asia for April, May, and June. CO and O3 transport and chemistry in the springtime in East Asia are studied by use of the HYbrid Single Particle Lagrangian Integrated Trajectory (HYSPLIT) model.

Keywords