Scinovex
article Open AccessTop 1% cited

The global lightning-induced nitrogen oxides source

Atmospheric chemistry and physics · 2007 · Vol. 7(14) · pp. 3823–3907
U. SchumannHeidi Huntrieser

Abstract

Abstract. The knowledge of the lightning-induced nitrogen oxides (LNOx) source is important for understanding and predicting the nitrogen oxides and ozone distributions in the troposphere and their trends, the oxidising capacity of the atmosphere, and the lifetime of trace gases destroyed by reactions with OH. This knowledge is further required for the assessment of other important NOx sources, in particular from aviation emissions, the stratosphere, and from surface sources, and for understanding the possible feedback between climate changes and lightning. This paper reviews more than 3 decades of research. The review includes laboratory studies as well as surface, airborne and satellite-based observations of lightning and of NOx and related species in the atmosphere. Relevant data available from measurements in regions with strong LNOx influence are identified, including recent observations at midlatitudes and over tropical continents where most lightning occurs. Various methods to model LNOx at cloud scales or globally are described. Previous estimates are re-evaluated using the global annual mean flash frequency of 44±5 s−1 reported from OTD satellite data. From the review, mainly of airborne measurements near thunderstorms and cloud-resolving models, we conclude that a "typical" thunderstorm flash produces 15 (2–40)×1025 NO molecules per flash, equivalent to 250 mol NOx or 3.5 kg of N mass per flash with uncertainty factor from 0.13 to 2.7. Mainly as a result of global model studies for various LNOx parameterisations tested with related observations, the best estimate of the annual global LNOx nitrogen mass source and its uncertainty range is (5±3) Tg a−1 in this study. In spite of a smaller global flash rate, the best estimate is essentially the same as in some earlier reviews, implying larger flash-specific NOx emissions. The paper estimates the LNOx accuracy required for various applications and lays out strategies for improving estimates in the future. An accuracy of about 1 Tg a−1 or 20%, as necessary in particular for understanding tropical tropospheric chemistry, is still a challenging goal.

Atmospheric chemistry and aerosolsAtmospheric and Environmental Gas DynamicsLightning and Electromagnetic PhenomenaLightning (connector)TroposphereStratosphereEnvironmental scienceThunderstormAtmospheric sciencesNOxMeteorologyAir mass (solar energy)Atmosphere (unit)
Citations
781
FWCI
25.32
field-weighted impact
References
640
Percentile
100%
vs. same field & year
Citations per year
References
The influence of nitrogen oxides on the atmospheric ozone content
Quarterly Journal of the Royal Meteorological Society · 1970 · 1,636 citations
SCIAMACHY: Mission Objectives and Measurement Modes
Journal of the Atmospheric Sciences · 1999 · 2,315 citations
Tropospheric chemistry: A global perspective
Journal of Geophysical Research Atmospheres · 1981 · 2,025 citations
WHERE ARE THE MOST INTENSE THUNDERSTORMS ON EARTH?
Bulletin of the American Meteorological Society · 2006 · 999 citations
Efficacy of climate forcings
Journal of Geophysical Research Atmospheres · 2005 · 1,633 citations
Global modeling of tropospheric chemistry with assimilated meteorology: Model description and evaluation
Journal of Geophysical Research Atmospheres · 2001 · 2,836 citations
The ozone monitoring instrument
IEEE Transactions on Geoscience and Remote Sensing · 2006 · 2,279 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

The global lightning-induced nitrogen oxides source · Scinovex