A growing threat to the ozone layer from short-lived anthropogenic chlorocarbons
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Author(s)
Type
Journal Article
Abstract
Large and effective reductions in emissions of long-lived ozone-depleting substance (ODS) are being achieved through the Montreal Protocol, the effectiveness
of which can be seen in the declining atmospheric abundances of many ODSs. An important remaining uncertainty concerns the role of very short-lived substances (VSLSs) which, owing to their relatively short atmospheric lifetimes (less than 6 months), are not regulated under the Montreal Protocol. Recent studies have found an unexplained increase in the global tropospheric abundance of one VSLS, dichloromethane (CH2Cl2), which has increased by around 60 % over the past decade. Here we report dramatic enhancements of several chlorine-containing VSLSs (Cl-VSLSs), including CH2Cl2 and CH2ClCH2Cl (1,2-dichloroethane), observed in surface and upper-tropospheric air in East and South East Asia. Surface observations were, on occasion, an order of magnitude higher than previously reported in the marine boundary layer, whilst upper-tropospheric data were up to 3 times higher than expected. In addition, we provide further evidence of an atmospheric transport mechanism
whereby substantial amounts of industrial pollution from
East Asia, including these chlorinated VSLSs, can rapidly,
and regularly, be transported to tropical regions of the west-
ern Pacific and subsequently uplifted to the tropical upper
troposphere. This latter region is a major provider of air entering the stratosphere, and so this mechanism, in conjunction with increasing emissions of Cl-VSLSs from East Asia, could potentially slow the expected recovery of stratospheric ozone.
of which can be seen in the declining atmospheric abundances of many ODSs. An important remaining uncertainty concerns the role of very short-lived substances (VSLSs) which, owing to their relatively short atmospheric lifetimes (less than 6 months), are not regulated under the Montreal Protocol. Recent studies have found an unexplained increase in the global tropospheric abundance of one VSLS, dichloromethane (CH2Cl2), which has increased by around 60 % over the past decade. Here we report dramatic enhancements of several chlorine-containing VSLSs (Cl-VSLSs), including CH2Cl2 and CH2ClCH2Cl (1,2-dichloroethane), observed in surface and upper-tropospheric air in East and South East Asia. Surface observations were, on occasion, an order of magnitude higher than previously reported in the marine boundary layer, whilst upper-tropospheric data were up to 3 times higher than expected. In addition, we provide further evidence of an atmospheric transport mechanism
whereby substantial amounts of industrial pollution from
East Asia, including these chlorinated VSLSs, can rapidly,
and regularly, be transported to tropical regions of the west-
ern Pacific and subsequently uplifted to the tropical upper
troposphere. This latter region is a major provider of air entering the stratosphere, and so this mechanism, in conjunction with increasing emissions of Cl-VSLSs from East Asia, could potentially slow the expected recovery of stratospheric ozone.
Date Issued
2017-10-12
Date Acceptance
2017-09-14
Citation
Atmospheric Chemistry and Physics, 2017, 17 (19), pp.11929-11941
ISSN
1680-7316
Publisher
Copernicus Publications
Start Page
11929
End Page
11941
Journal / Book Title
Atmospheric Chemistry and Physics
Volume
17
Issue
19
Copyright Statement
© Author(s) 2017. This work is distributed under the Creative Commons Attribution 3.0 License.
License URL
Identifier
https://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=PARTNER_APP&SrcAuth=LinksAMR&KeyUT=WOS:000412845500001&DestLinkType=FullRecord&DestApp=ALL_WOS&UsrCustomerID=a2bf6146997ec60c407a63945d4e92bb
Subjects
ATMOSPHERE
CHEMICALS
CHLOROFORM
DEPLETION
DICHLOROMETHANE
DISTRIBUTIONS
EMISSIONS
Environmental Sciences
Environmental Sciences & Ecology
Life Sciences & Biomedicine
Meteorology & Atmospheric Sciences
NONMETHANE HYDROCARBONS
Physical Sciences
Science & Technology
TRANSPORT
TRENDS
Publication Status
Published
Date Publish Online
2017-10-12