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Revisiting the Effectiveness Of HCHO/NO2 Ratios for Inferring Ozone Sensitivity to Its Precursors Using High Resolution Airborne Remote Sensing Observations in A High Ozone Episode During the KORUS-AQ Campaign The nonlinear chemical processes involved in ozone production (P(O3)) have necessitated using proxy indicators to convey information about the primary dependence of P(O3) on volatile organic compounds (VOCs) or nitrogen oxides (NOx). In particular, the ratio of remotely sensed columns of formaldehyde (HCHO) to nitrogen dioxide (NO2) has been widely used for studying O3 sensitivity. Previous studies found that the errors in retrievals and the incoherent relationship between the column and the near-surface concentrations are a barrier in applying the ratio in a robust way. In addition to these obstacles, we provide calculational-observational evidence, using an ensemble of 0-D photochemical box models constrained by DC-8 aircraft measurements on an ozone event during the Korea-United States Air Quality (KORUS-AQ) campaign over Seoul, to demonstrate the chemical feedback of NO2 on the formation of HCHO is a controlling factor for the transition line between NOx-sensitive and NOx-saturated regimes. A fixed value (~2.7) of the ratio of the chemical loss of NOx (LNOx) to the chemical loss of HO2+RO2 (LROx) perceptibly differentiates the regimes. Following this value, data points with a ratio of HCHO/NO2 less than 1 can be safely classified as NOx-saturated regime, whereas points with ratios between 1 and 4 fall into one or the other regime. We attribute this mainly to the HCHO-NO2 chemical relationship causing the transition line to occur at larger (smaller) HCHO/NO2 ratios in VOC-rich (VOC-poor) environments. We then redefine the transition line to LNOx/LROx~2.7 that accounts for the HCHO-NO2 chemical relationship leading to HCHO = 3.7 × (NO2 – 1.14 × 1016 molec.cm-2). Although the revised formula is locally calibrated (i.e., requires for readjustment for other regions), its mathematical format removes the need for having a wide range of thresholds used in HCHO/NO2 ratios that is a result of the chemical feedback. Therefore, to be able to properly take the chemical feedback into consideration, the use of HCHO = a × (NO2 – b) formula should be preferred to the ratio in future works. We then use the Geostationary Trace gas and Aerosol Sensor Optimization (GeoTASO) airborne instrument to study O3 sensitivity in Seoul. The unprecedented spatial (250 × 250 m2) and temporal (~every 2 h) resolutions of HCHO and NO2 observations form the sensor enhance our understanding of P(O3) in Seoul; rather than providing a crude label for the entire city, more in-depth variabilities in chemical regimes are observed that should be able to inform mitigation strategies correspondingly.
Document ID
20205010910
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Amir H Souri
(Harvard-Smithsonian Center for Astrophysics Cambridge, Massachusetts, United States)
Caroline R Nowlan
(Harvard-Smithsonian Center for Astrophysics Cambridge, Massachusetts, United States)
Glenn M Wolfe
(University of Maryland, Baltimore County Baltimore, Maryland, United States)
Lok Nath Lamsal
(Universities Space Research Association Columbia, Maryland, United States)
Christopher E Chan Miller
(Harvard-Smithsonian Center for Astrophysics Cambridge, Massachusetts, United States)
Gonzalo Gonzalez Abad
(Smithsonian Astrophysical Observatory Cambridge, Massachusetts, United States)
Scott J Janz
(Goddard Space Flight Center Greenbelt, Maryland, United States)
Alan Fried
(University of Colorado Boulder Boulder, Colorado, United States)
Donald R Blake
(University of California, Irvine Irvine, California, United States)
Andrew J Weinheimer
(National Center for Atmospheric Research Boulder, Colorado, United States)
Glenn S Diskin
(Langley Research Center Hampton, Virginia, United States)
Xiong Liu
(Smithsonian Astrophysical Observatory Cambridge, Massachusetts, United States)
Kelly Chance
(Smithsonian Astrophysical Observatory Cambridge, Massachusetts, United States)
Date Acquired
December 1, 2020
Publication Date
February 12, 2020
Publication Information
Publication: Atmospheric Environment
Publisher: Elsevier
Volume: 224
Issue Publication Date: March 1, 2020
ISSN: 1352-2310
Subject Category
Environment Pollution
Funding Number(s)
CONTRACT_GRANT: NNX15AT34A
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
NASA Peer Committee
Keywords
KORUS-AQ; formaldehyde; NOx; VOC; OMI; GeoTASO; ozone; chemistry
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