The impact of lightning on tropospheric ozone chemistry using a new global lightning parametrisation
A lightning parametrisation based on upward cloud ice flux is implemented in a chemistry–climate model (CCM) for the first time. The UK Chemistry and Aerosols model is used to study the impact of these lightning nitric oxide (NO) emissions on ozone. Comparisons are then made between the new ice f...
| Published in: | Atmospheric Chemistry and Physics |
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| Main Authors: | , , , |
| Format: | Article |
| Language: | English |
| Published: |
Copernicus Publications
2016-06-01
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| Subjects: | |
| Online Access: | https://www.atmos-chem-phys.net/16/7507/2016/acp-16-7507-2016.pdf |
| Summary: | A lightning parametrisation based on upward cloud ice flux is implemented in
a chemistry–climate model (CCM) for the first time. The UK Chemistry and
Aerosols model is used to study the impact of these lightning nitric oxide
(NO) emissions on ozone. Comparisons are then made between the new ice flux
parametrisation and the commonly used, cloud-top height parametrisation. The
ice flux approach improves the simulation of lightning and the temporal
correlations with ozone sonde measurements in the middle and upper
troposphere. Peak values of ozone in these regions are attributed to high
lightning NO emissions. The ice flux approach reduces the overestimation of
tropical lightning apparent in this CCM when using the cloud-top approach.
This results in less NO emission in the tropical upper troposphere and more
in the extratropics when using the ice flux scheme. In the tropical upper
troposphere the reduction in ozone concentration is around 5–10 %.
Surprisingly, there is only a small reduction in tropospheric ozone burden
when using the ice flux approach. The greatest absolute change in ozone
burden is found in the lower stratosphere, suggesting that much of the ozone
produced in the upper troposphere is transported to higher altitudes. Major
differences in the frequency distribution of flash rates for the two
approaches are found. The cloud-top height scheme has lower maximum flash
rates and more mid-range flash rates than the ice flux scheme. The initial
O<sub><i>x</i></sub> (odd oxygen species) production associated with the frequency
distribution of continental lightning is analysed to show that higher flash
rates are less efficient at producing O<sub><i>x</i></sub>; low flash rates initially
produce around 10 times more O<sub><i>x</i></sub> per flash than high-end flash rates. We
find that the newly implemented lightning scheme performs favourably compared
to the cloud-top scheme with respect to simulation of lightning and
tropospheric ozone. This alternative lightning scheme shows spatial and
temporal differences in ozone chemistry which may have implications for
comparison between models and observations, as well as for simulation of future
changes in tropospheric ozone. |
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| ISSN: | 1680-7316 1680-7324 |
