Multi-satellite sensor study on precipitation-induced emission pulses of NOx from soils in semi-arid ecosystems
Item
Title (Dublin Core)
Multi-satellite sensor study on precipitation-induced emission pulses of NOx from soils in semi-arid ecosystems
Description (Dublin Core)
We present a top-down approach to infer and quantify rain-induced emission pulses of NO<sub><i>x</i></sub> ( ≡ NO + NO<sub>2</sub>), stemming from biotic emissions of NO from soils, from satellite-borne measurements of NO<sub>2</sub>. This is achieved by synchronizing time series at single grid pixels according to the first day of rain after a dry spell of prescribed duration. The full track of the temporal evolution several weeks before and after a rain pulse is retained with daily resolution. These are needed for a sophisticated background correction, which accounts for seasonal variations in the time series and allows for improved quantification of rain-induced soil emissions. The method is applied globally and provides constraints on pulsed soil emissions of NO<sub><i>x</i></sub> in regions where the NO<sub><i>x</i></sub> budget is seasonally dominated by soil emissions.<br><br> We find strong peaks of enhanced NO<sub>2</sub> vertical column densities (VCDs) induced by the first intense precipitation after prolonged droughts in many semi-arid regions of the world, in particular in the Sahel. Detailed investigations show that the rain-induced NO<sub>2</sub> pulse detected by the OMI (Ozone Monitoring Instrument), GOME-2 and SCIAMACHY satellite instruments could not be explained by other sources, such as biomass burning or lightning, or by retrieval artefacts (e.g. due to clouds).<br><br> For the Sahel region, absolute enhancements of the NO<sub>2</sub> VCDs on the first day of rain based on OMI measurements 2007–2010 are on average 4 × 10<sup>14</sup>  molec cm<sup>−2</sup> and exceed 1 × 10<sup>15</sup>  molec cm<sup>−2</sup> for individual grid cells. Assuming a NO<sub><i>x</i></sub> lifetime of 4 h, this corresponds to soil NO<sub><i>x</i></sub> emissions in the range of 6 up to 65 ng N m<sup>−2</sup> s<sup>−1</sup>, which is in good agreement with literature values. Apart from the clear first-day peak, NO<sub>2</sub> VCDs are moderately enhanced (2 × 10<sup>14</sup>  molec cm<sup>−2</sup>) compared to the background over the following 2 weeks, suggesting potential further emissions during that period of about 3.3 ng N m<sup>−2</sup> s<sup>−1</sup>. The pulsed emissions contribute about 21–44 % to total soil NO<sub><i>x</i></sub> emissions over the Sahel.
Creator (Dublin Core)
Zörner, Jan
Penning de Vries, Marloes
Beirle, Steffen
Sihler, Holger
Veres, Patrick R.
Williams, Jonathan
Wagner, Thomas
Date (Dublin Core)
2018-09-10
Type (Dublin Core)
Text
Format (Dublin Core)
application/pdf
Identifier (Dublin Core)
10.5194/acp-16-9457-2016
https://acp.copernicus.org/articles/16/9457/2016/
Source (Dublin Core)
eISSN: 1680-7324
Language (Dublin Core)
eng



