Separating the role of direct radiative heating and photolysis in modulating the atmospheric response to the amplitude of the 11-year solar cycle forcing
-
Published:2019-08-02
Issue:15
Volume:19
Page:9833-9846
-
ISSN:1680-7324
-
Container-title:Atmospheric Chemistry and Physics
-
language:en
-
Short-container-title:Atmos. Chem. Phys.
Author:
Bednarz Ewa M., Maycock Amanda C., Braesicke Peter, Telford Paul J., Abraham N. LukeORCID, Pyle John A.ORCID
Abstract
Abstract. The atmospheric response to the 11-year solar cycle is separated into the
contributions from changes in direct radiative heating and photolysis rates
using specially designed sensitivity simulations with the UM-UKCA (Unified
Model coupled to the United Kingdom Chemistry and
Aerosol model) chemistry–climate model. We perform a number of idealised time-slice
experiments under perpetual solar maximum (SMAX) and minimum conditions
(SMIN), and we find that contributions from changes in direct heating and
photolysis rates are both important for determining the stratospheric
shortwave heating, temperature and ozone responses to the amplitude of the
11-year solar cycle. The combined effects of the processes are found to be
largely additive in the tropics but nonadditive in the Southern Hemisphere
(SH) high latitudes during the dynamically active season. Our results
indicate that, in contrast to the original mechanism proposed in the
literature, the solar-induced changes in the horizontal shortwave heating
rate gradients not only in autumn/early winter but throughout the
dynamically active season are important for modulating the dynamical
response to changes in solar forcing. In spring, these gradients are
strongly influenced by the shortwave heating anomalies at higher southern
latitudes, which are closely linked to the concurrent changes in ozone. In
addition, our simulations indicate differences in the winter SH dynamical
responses between the experiments. We suggest a couple of potential drivers
of the simulated differences, i.e. the role of enhanced zonally asymmetric
ozone heating brought about by the increased solar-induced ozone levels
under SMAX and/or sensitivity of the polar dynamical response to the
altitude of the anomalous radiative tendencies. All in all, our results
suggest that solar-induced changes in ozone, both in the
tropics/mid-latitudes and the polar regions, are important for modulating
the SH dynamical response to the 11-year solar cycle. In addition, the
markedly nonadditive character of the SH polar vortex response simulated in
austral spring highlights the need for consistent model implementation of
the solar cycle forcing in both the radiative heating and photolysis
schemes.
Funder
European Research Council
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference68 articles.
1. Andrews, D. G., Holton, J. R., and Leovy, C. B.: Middle Atmosphere Dynamics,
Academic Press, San Diego, 489 pp., 1987. 2. Andrews, M. B., Knight, J. R., and Gray, L. J.: A simulated lagged response
of the North Atlantic Oscillation to the solar cycle over the period
1960–2009, Environ. Res. Lett., 10, 054022, https://doi.org/10.1088/1748-9326/10/5/054022, 2015. 3. Austin, J., Tourpali, K., Rozanov, E., Akiyoshi, H., Bekki, S., Bodeker, G.,
Bruhl, C., Butchart, N., Chipperfield, M., Deushi, M., Fomichev, V. I.,
Giorgetta, M. A., Gray, L., Kodera, K., Lott, F., Manzini, E., Marsh, D.,
Matthes, K., Nagashima, T., Shibata, K., Stolarski, R. S., Struthers, H.,
and Tian, W.: Coupled chemistry climate model simulations of the solar cycle
in ozone and temperature, J. Geophys. Res.-Atmos., 113,
D11306, https://doi.org/10.1029/2007jd009391, 2008. 4. Barnett, J. J., Houghton, J. T., and Pyle, J. A.: Temperature-dependence of
ozone concentration near stratopause, Q. J. Roy.
Meteorol. Soc., 101, 245–257, https://doi.org/10.1002/qj.49710142808, 1975. 5. Bednarz, E. M., Maycock, A. C., Abraham, N. L., Braesicke, P., Dessens, O.,
and Pyle, J. A.: Future Arctic ozone recovery: the importance of chemistry
and dynamics, Atmos. Chem. Phys., 16, 12159–12176,
https://doi.org/10.5194/acp-16-12159-2016, 2016.
Cited by
2 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|