Budget of tropospheric ozone during TOPSE from two chemical transport models
Open Access
- 26 April 2003
- journal article
- research article
- Published by American Geophysical Union (AGU) in Journal of Geophysical Research: Atmospheres
- Vol. 108 (D8)
- https://doi.org/10.1029/2002jd002665
Abstract
The tropospheric ozone budget during the Tropospheric Ozone Production about the Spring Equinox (TOPSE) campaign has been studied using two chemical transport models (CTMs): HANK and the Model of Ozone and Related chemical Tracers, version 2 (MOZART‐2). The two models have similar chemical schemes but use different meteorological fields, with HANK using MM5 (Pennsylvania State University, National Center for Atmospheric Research Mesoscale Modeling System) and MOZART‐2 driven by European Centre for Medium‐Range Weather Forecasts (ECMWF) fields. Both models simulate ozone in good agreement with the observations but underestimate NOx. The models indicate that in the troposphere, averaged over the northern middle and high latitudes, chemical production of ozone drives the increase of ozone seen in the spring. Both ozone gross chemical production and loss increase greatly over the spring months. The in situ production is much larger than the net stratospheric input, and the deposition and horizontal fluxes are relatively small in comparison to chemical destruction. The net production depends sensitively on the concentrations of H2O, HO2 and NO, which differ slightly in the two models. Both models underestimate the chemical production calculated in a steady state model using TOPSE measurements, but the chemical loss rates agree well. Measures of the stratospheric influence on tropospheric ozone in relation to in situ ozone production are discussed. Two different estimates of the stratospheric fraction of O3 in the Northern Hemisphere troposphere indicate it decreases from 30–50% in February to 15–30% in June. A sensitivity study of the effect of a perturbation in the vertical flux on tropospheric ozone indicates the contribution from the stratosphere is approximately 15%.Keywords
This publication has 47 references indexed in Scilit:
- Steady state free radical budgets and ozone photochemistry during TOPSEJournal of Geophysical Research: Atmospheres, 2003
- Ozone depletion events observed in the high latitude surface layer during the TOPSE aircraft programJournal of Geophysical Research: Atmospheres, 2003
- Model analysis of the temporal and geographical origin of the CO distribution during the TOPSE campaignJournal of Geophysical Research: Atmospheres, 2003
- Severe chemical ozone loss inside the Arctic Polar Vortex during winter 1999–2000 Inferred from in situ airborne measurementsGeophysical Research Letters, 2001
- Large loss of total ozone during the Arctic winter of 1999/2000Geophysical Research Letters, 2000
- Three-dimensional model study of the influence of stratosphere-troposphere exchange and its distribution on tropospheric chemistryJournal of Geophysical Research: Atmospheres, 1999
- An analysis of ozonesonde data for the troposphere: Recommendations for testing 3‐D models and development of a gridded climatology for tropospheric ozoneJournal of Geophysical Research: Atmospheres, 1999
- Photolysis frequency measurements using actinic flux spectroradiometry during the PEM‐Tropics mission: Instrumentation description and some resultsJournal of Geophysical Research: Atmospheres, 1999
- NOx from lightning: 1. Global distribution based on lightning physicsJournal of Geophysical Research: Atmospheres, 1997
- Stratosphere‐troposphere exchangeReviews of Geophysics, 1995