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Updated: Apr 5, 2026

Automated, High-resolution Mobile Collection System for the Nitrogen Isotopic Analysis of NOx
Published on: December 20, 2016
Precursor reductions and ground-level ozone in the Continental United States
George M Hidy1, Charles L Blanchard2
1a Envair/Aerochem , Placitas , NM , USA.
Unlabelled:
Numerous papers analyze ground-level ozone (O₃) trends since the 1980s, but few have linked O₃trends with observed changes in nitrogen oxide (NOx) and volatile organic compound (VOC) emissions and ambient concentrations. This analysis of emissions and ambient measurements examines this linkage across the United States on multiple spatial scales from continental to urban. O₃concentrations follow the general decreases in both NOx and VOC emissions and ambient concentrations of precursors (nitrogen dioxide, NO₂; nonmethane organic compounds, NMOCs). Annual fourth-highest daily peak 8-hr average ozone and annual average or 98th percentile daily maximum hourly NO₂concentrations show a statistically significant (p < 0.05) linear fit whose slope is less than 1:1 and intercept is in the 30 to >50 ppbv range. This empirical relationship is consistent with current understanding of O₃photochemistry. The linear O₃-NO₂relationships found from our multispatial scale analysis can be used to extrapolate the rate of change of O₃with projected NOx emission reductions, which suggests that future declines in annual fourth-highest daily average 8-hr maximum O₃concentrations are unlikely to reach 65 ppbv or lower everywhere in the next decade. Measurements do not indicate increased annual reduction rates in (high) O₃concentrations beyond the multidecadal precursor proportionality, since aggressive measures for NOx and VOC reduction are in place and have not produced an accelerated O₃reduction rate beyond that prior to the mid-2000s. Empirically estimated changes in O₃with emissions suggest that O₃is less sensitive to precursor reductions than is found by the CAMx (v. 6.1) photochemical model. Options for increasing the rate of O₃change are limited by photochemical factors, including the increase in NOx sensitivity with time (NMOC/NOx ratio increase), increase in O₃production efficiency at lower NOx concentrations (higher O₃/NOy ratio), and the presence of natural NOx and NMOC precursors and background O₃.
Implications:
This analysis demonstrates empirical relations between O₃and precursors based on long term trends in U.S.
Locations:
The results indicate that ground-level O₃concentrations have responded predictably to reductions in VOC and NOx since the 1980s. The analysis reveals linear relations between the highest O₃and NO₂concentrations. Extrapolation of the historic trends to the future with expected continued precursor reductions suggest that achieving the 2014 proposed reduction in the U.S. National Ambient Air Quality Standard to a level between 65 and 70 ppbv is unlikely within the next decade. Comparison of measurements with national results from a regulatory photochemical model, CAMx, v. 6.1, suggests that model predictions are more sensitive to emissions changes than the observations would support.
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