Semi-empirical models for chlorine activation and ozone depletion in the Antarctic stratosphere: proof of concept

Two semi-empirical models were developed for the Antarctic stratosphere to relate the shift of species within total chlorine (Cl<sub>y</sub> = HCl + ClONO<sub>2</sub> + HOCl + 2 × Cl<sub>2</sub> + 2×Cl<sub>2</sub>O<sub>2</sub> + ClO + Cl) i...

Full description

Bibliographic Details
Main Authors: P. E. Huck, G. E. Bodeker, S. Kremser, A. J. McDonald, M. Rex, H. Struthers
Format: Article
Language:English
Published: Copernicus Publications 2013-03-01
Series:Atmospheric Chemistry and Physics
Online Access:http://www.atmos-chem-phys.net/13/3237/2013/acp-13-3237-2013.pdf
_version_ 1818564099892576256
author P. E. Huck
G. E. Bodeker
S. Kremser
A. J. McDonald
M. Rex
H. Struthers
author_facet P. E. Huck
G. E. Bodeker
S. Kremser
A. J. McDonald
M. Rex
H. Struthers
author_sort P. E. Huck
collection DOAJ
description Two semi-empirical models were developed for the Antarctic stratosphere to relate the shift of species within total chlorine (Cl<sub>y</sub> = HCl + ClONO<sub>2</sub> + HOCl + 2 × Cl<sub>2</sub> + 2×Cl<sub>2</sub>O<sub>2</sub> + ClO + Cl) into the active forms (here: ClO<sub>x</sub> = 2×Cl<sub>2</sub>O<sub>2</sub> + ClO), and to relate the rate of ozone destruction to ClO<sub>x</sub>. These two models provide a fast and computationally inexpensive way to describe the inter- and intra-annual evolution of ClO<sub>x</sub> and ozone mass deficit (OMD) in the Antarctic spring. The models are based on the underlying physics/chemistry of the system and capture the key chemical and physical processes in the Antarctic stratosphere that determine the interaction between climate change and Antarctic ozone depletion. They were developed considering bulk effects of chemical mechanisms for the duration of the Antarctic vortex period and quantities averaged over the vortex area. The model equations were regressed against observations of daytime ClO and OMD providing a set of empirical fit coefficients. Both semi-empirical models are able to explain much of the intra- and inter-annual variability observed in daily ClO<sub>x</sub> and OMD time series. This proof-of-concept paper outlines the semi-empirical approach to describing the evolution of Antarctic chlorine activation and ozone depletion.
first_indexed 2024-12-14T01:24:55Z
format Article
id doaj.art-6238c38367e140c7bf96dd314ec9abeb
institution Directory Open Access Journal
issn 1680-7316
1680-7324
language English
last_indexed 2024-12-14T01:24:55Z
publishDate 2013-03-01
publisher Copernicus Publications
record_format Article
series Atmospheric Chemistry and Physics
spelling doaj.art-6238c38367e140c7bf96dd314ec9abeb2022-12-21T23:22:14ZengCopernicus PublicationsAtmospheric Chemistry and Physics1680-73161680-73242013-03-011363237324310.5194/acp-13-3237-2013Semi-empirical models for chlorine activation and ozone depletion in the Antarctic stratosphere: proof of conceptP. E. HuckG. E. BodekerS. KremserA. J. McDonaldM. RexH. StruthersTwo semi-empirical models were developed for the Antarctic stratosphere to relate the shift of species within total chlorine (Cl<sub>y</sub> = HCl + ClONO<sub>2</sub> + HOCl + 2 × Cl<sub>2</sub> + 2×Cl<sub>2</sub>O<sub>2</sub> + ClO + Cl) into the active forms (here: ClO<sub>x</sub> = 2×Cl<sub>2</sub>O<sub>2</sub> + ClO), and to relate the rate of ozone destruction to ClO<sub>x</sub>. These two models provide a fast and computationally inexpensive way to describe the inter- and intra-annual evolution of ClO<sub>x</sub> and ozone mass deficit (OMD) in the Antarctic spring. The models are based on the underlying physics/chemistry of the system and capture the key chemical and physical processes in the Antarctic stratosphere that determine the interaction between climate change and Antarctic ozone depletion. They were developed considering bulk effects of chemical mechanisms for the duration of the Antarctic vortex period and quantities averaged over the vortex area. The model equations were regressed against observations of daytime ClO and OMD providing a set of empirical fit coefficients. Both semi-empirical models are able to explain much of the intra- and inter-annual variability observed in daily ClO<sub>x</sub> and OMD time series. This proof-of-concept paper outlines the semi-empirical approach to describing the evolution of Antarctic chlorine activation and ozone depletion.http://www.atmos-chem-phys.net/13/3237/2013/acp-13-3237-2013.pdf
spellingShingle P. E. Huck
G. E. Bodeker
S. Kremser
A. J. McDonald
M. Rex
H. Struthers
Semi-empirical models for chlorine activation and ozone depletion in the Antarctic stratosphere: proof of concept
Atmospheric Chemistry and Physics
title Semi-empirical models for chlorine activation and ozone depletion in the Antarctic stratosphere: proof of concept
title_full Semi-empirical models for chlorine activation and ozone depletion in the Antarctic stratosphere: proof of concept
title_fullStr Semi-empirical models for chlorine activation and ozone depletion in the Antarctic stratosphere: proof of concept
title_full_unstemmed Semi-empirical models for chlorine activation and ozone depletion in the Antarctic stratosphere: proof of concept
title_short Semi-empirical models for chlorine activation and ozone depletion in the Antarctic stratosphere: proof of concept
title_sort semi empirical models for chlorine activation and ozone depletion in the antarctic stratosphere proof of concept
url http://www.atmos-chem-phys.net/13/3237/2013/acp-13-3237-2013.pdf
work_keys_str_mv AT pehuck semiempiricalmodelsforchlorineactivationandozonedepletionintheantarcticstratosphereproofofconcept
AT gebodeker semiempiricalmodelsforchlorineactivationandozonedepletionintheantarcticstratosphereproofofconcept
AT skremser semiempiricalmodelsforchlorineactivationandozonedepletionintheantarcticstratosphereproofofconcept
AT ajmcdonald semiempiricalmodelsforchlorineactivationandozonedepletionintheantarcticstratosphereproofofconcept
AT mrex semiempiricalmodelsforchlorineactivationandozonedepletionintheantarcticstratosphereproofofconcept
AT hstruthers semiempiricalmodelsforchlorineactivationandozonedepletionintheantarcticstratosphereproofofconcept