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The Role of Lightning in Controlling Interannual Variability of Tropical Tropospheric Ozone and OH and its Implications for ClimateNitrogen oxides (NO(x) = NO + NO2) produced by lightning make a major contribution to the production of the dominant tropospheric oxidants (OH and ozone). These oxidants control the lifetime of many trace gases including long-lived greenhouse gases, and control the source-receptor relationship of inter-hemispheric pollutant transport. Lightning is affected by meteorological variability, and therefore represents a potentially important tropospheric chemistry-climate feedback. Understanding how interannual variability (IAV) in lightning affects IAV in ozone and OH in the recent past is important if we are to predict how oxidant levels may change in a future warmer climate. However, lightning parameterizations for chemical transport models (CTMs) show low skill in reproducing even climatological distributions of flash rates from the Lightning Imaging Sensor (LIS) and the Optical Transient Detector (OTD) satellite instruments. We present an optimized regional scaling algorithm for CTMs that enables sufficient sampling of spatiotemporally sparse satellite lightning data from LIS to constrain the spatial, seasonal, and interannual variability of tropical lightning. We construct a monthly time series of lightning flash rates for 1998-2010 and 35degS-35degN, and find a correlation of IAV in total tropical lightning with El Nino. We use the IAV-constraint to drive a 9-year hindcast (1998-2006) of the GEOS-Chem 3D chemical transport model, and find the increased IAV in LNO(x) drives increased IAV in ozone and OH, improving the model fs ability to simulate both. Although lightning contributes more than any other emission source to IAV in ozone, we find ozone more sensitive to meteorology, particularly convective transport. However, we find IAV in OH to be highly sensitive to lightning NO(x), and the constraint improves the ability of the model to capture the temporal behavior of OH anomalies inferred from observations of methyl chloroform and other gases. The sensitivity of OH is explained using photochemical reaction rates which show a "magnification" effect of the initial lightning NO perturbation on OH primary production, HO(x) recycling, and OH loss frequencies. This influence on OH may represent a negative feedback, if lightning increases in a warming world..
Document ID
20130001850
Acquisition Source
Marshall Space Flight Center
Document Type
Abstract
Authors
Murray, Lee T.
(Harvard Univ. Cambridge, MA, United States)
Jacob, Daniel J.
(Harvard Univ. Cambridge, MA, United States)
Logan, Jennifer A.
(Harvard Univ. Cambridge, MA, United States)
Hudman, Rynda C.
(Harvard Univ. Cambridge, MA, United States)
Koshak, William J.
(NASA Marshall Space Flight Center Huntsville, AL, United States)
Date Acquired
August 27, 2013
Publication Date
December 3, 2012
Subject Category
Meteorology And Climatology
Report/Patent Number
M12-2030
Meeting Information
Meeting: American Geophysical Union (AGU) 45th Annual Fall Meeting
Location: San Francisco, CA
Country: United States
Start Date: December 3, 2012
End Date: December 7, 2012
Distribution Limits
Public
Copyright
Public Use Permitted.
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