Chemical ozone loss in the Arctic winter 1994/95 as determined by the Match technique

被引:80
作者
Rex, M
von der Gathen, P
Braathen, GO
Harris, NRP
Reimer, E
Beck, A
Alfier, R
Krüger-Carstensen, R
Chipperfield, M
de Backer, H
Balis, D
O'Connor, F
Dier, H
Dorokhov, V
Fast, H
Gamma, A
Gil, M
Kyrö, E
Litynska, Z
Mikkelsen, S
Molyneux, M
Murphy, G
Reid, SJ
Rummukainen, M
Zerefos, C
机构
[1] Alfred Wegener Inst Polar & Marine Res, D-14401 Potsdam, Germany
[2] NILU, N-2007 Kjeller, Norway
[3] European Ozone Res Coordinating Unit, Cambridge CB2 1HE, England
[4] Free Univ Berlin, Inst Meteorol, D-12165 Berlin, Germany
[5] Univ Cambridge, Dept Chem, Ctr Atmospher Sci, Cambridge CB2 1EW, England
[6] Royal Meteorol Inst, B-1180 Brussels, Belgium
[7] Univ Thessaloniki, Lab Atmospher Phys, GR-54006 Salonika, Greece
[8] Univ Wales, Dept Phys, Aberystwyth SY23 3BZ, Dyfed, Wales
[9] Meteorol Observ Lindenberg, D-15864 Lindenberg, Germany
[10] Cent Aerol Observ, Dolgoprudnyi 141700, Moscow Region, Russia
[11] Atmospher Environm Serv, N York, ON M3H 5T4, Canada
[12] ETH Honggerberg, Lab Atmospher Phys, CH-8093 Zurich, Switzerland
[13] Inst Nacl Tecn Aerospacial, Madrid 28850, Spain
[14] Finnish Meteorol Inst, SF-99600 Sodankyla, Finland
[15] Inst Meteorol & Water Management, Ctr Aerol, PL-95119 Legionowo, Poland
[16] Danish Meteorol Inst, DK-2100 Copenhagen O, Denmark
[17] Met Off, OP2C, Bracknell RG11 2SZ, Berks, England
[18] Valentia Observ, Irish Meteorol Serv, Cahirciveen, Ireland
关键词
Arctic; Lagrangian measurements; ozone layer; ozone loss; ozone sondes; stratosphere;
D O I
10.1023/A:1006093826861
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The chemically induced ozone loss inside the Arctic vortex during the winter 1994/95 has been quantified by coordinated launches of over 1000 ozonesondes from 35 stations within the Match 94/95 campaign. Trajectory calculations, which allow diabatic heating or cooling, were used to trigger the balloon launches so that the ozone concentrations in a large number of air parcels are each measured twice a few days apart. The difference in ozone concentration is calculated for each pair and is interpreted as a change caused by chemistry. The data analysis has been carried out far January to March between 370 K and 600 K potential temperature. Ozone loss along these trajectories occurred exclusively during sunlit periods, and the periods of ozone loss coincided with, but slightly lagged, periods where stratospheric temperatures were low enough for polar stratospheric clouds to exist. Two clearly separated periods of ozone loss show up. Ozone loss rates first peaked in late January with a maximum value of 53 ppbv per day (1.6 % per day) at 475 K and faster losses higher up. Then, in mid-March ozone loss rates at 475 K reached 34 ppbv per day (1.3 % per day), faster losses were observed lower down and no ozone loss was found above 480 K during that period. The ozone loss in hypothetical air parcels with average diabatic descent rates has been integrated to give an accumulated loss through the winter. The most severe depletion of 2.0 ppmv (60 %) took place in air that was at 515 K on 1 January and at 450 K an 20 March. Vertical integration over the levels from 370 K to 600 K gives a column lass rate, which reached a maximum value of 2.7 Dobson Units per day in mid-March. The accumulated column loss between 1 January and 31 March was found to be 127 DU (similar to 36 %).
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页码:35 / 59
页数:25
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