Distal deposition of tephra from the Eyjafjallajokull 2010 summit eruption

被引:47
作者
Stevenson, J. A. [1 ]
Loughlin, S. [2 ]
Rae, C. [3 ]
Thordarson, T.
Milodowski, A. E. [4 ]
Gilbert, J. S. [5 ]
Harangi, S. [6 ]
Lukacs, R. [6 ]
Hojgaard, B.
Arting, U.
Pyne-O'Donnell, S. [7 ]
MacLeod, A. [8 ]
Whitney, B. [9 ]
Cassidy, M. [10 ]
机构
[1] Univ Edinburgh, Grant Inst, Sch Geosci, Edinburgh EH9 3JW, Midlothian, Scotland
[2] British Geol Survey, Edinburgh, Midlothian, Scotland
[3] AEA, Glengarnock Technol Ctr, Glengarnock, England
[4] British Geol Survey, Keyworth, Notts, England
[5] Univ Lancaster, Lancaster Environm Ctr, Lancaster, England
[6] Eotvos Univ Budapest ELTE, Inst Geog & Earth Sci, Budapest, Hungary
[7] Univ Bergen, Dept Earth Sci, Bergen, Norway
[8] Univ London, Dept Geog, Egham, Surrey, England
[9] Univ Edinburgh, Sch Geosci, Edinburgh, Midlothian, Scotland
[10] Univ Southampton, Natl Oceanog Ctr, Southampton, Hants, England
关键词
VOLCANIC ASH; NORTHERN EUROPE; ICELAND; TEPHROCHRONOLOGY; PLUME; TIME;
D O I
10.1029/2011JB008904
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The 2010 Eyjafjallajokull lasted 39 days and had 4 different phases, of which the first and third (14-18 April and 5-6 May) were most intense. Most of this period was dominated by winds with a northerly component that carried tephra toward Europe, where it was deposited in a number of locations and was sampled by rain gauges or buckets, surface swabs, sticky-tape samples and air filtering. In the UK, tephra was collected from each of the Phases 1-3 with a combined range of latitudes spanning the length of the country. The modal grain size of tephra in the rain gauge samples was 25 mu m, but the largest grains were 100 mu m in diameter and highly vesicular. The mass loading was equivalent to 8-218 shards cm(-2), which is comparable to tephra layers from much larger past eruptions. Falling tephra was collected on sticky tape in the English Midlands on 19, 20 and 21st April (Phase 2), and was dominated by aggregate clasts (mean diameter 85 mu m, component grains <10 mu m). SEM-EDS spectra for aggregate grains contained an extra peak for sulphur, when compared to control samples from the volcano, indicating that they were cemented by sulphur-rich minerals e. g. gypsum (CaSO4 center dot H2O). Air quality monitoring stations did not record fluctuations in hourly PM10 concentrations outside the normal range of variability during the eruption, but there was a small increase in 24-hour running mean concentration from 21-24 April (Phase 2). Deposition of tephra from Phase 2 in the UK indicates that transport of tephra from Iceland is possible even for small eruption plumes given suitable wind conditions. The presence of relatively coarse grains adds uncertainty to concentration estimates from air quality sensors, which are most sensitive to grain sizes <10 mu m. Elsewhere, tephra was collected from roofs and vehicles in the Faroe Islands (mean grain size 40 mu m, but 100 mu m common), from rainwater in Bergen in Norway (23-91 mu m) and in air filters in Budapest, Hungary (2-6 mu m). A map is presented summarizing these and other recently published examples of distal tephra deposition from the Eyjafjallajokull eruption. It demonstrates that most tephra deposited on mainland Europe was produced in the highly explosive Phase 1 and was carried there in 2-3 days.
引用
收藏
页数:10
相关论文
共 32 条
[1]   Evidence for the presence of the Vedde Ash in Central Europe [J].
Blockley, S. P. E. ;
Lane, C. S. ;
Lotter, A. F. ;
Pollard, A. M. .
QUATERNARY SCIENCE REVIEWS, 2007, 26 (25-28) :3030-3036
[2]   Ground-based and airborne in-situ measurements of the Eyjafjallajokull volcanic aerosol plume in Switzerland in spring 2010 [J].
Bukowiecki, N. ;
Zieger, P. ;
Weingartner, E. ;
Juranyi, Z. ;
Gysel, M. ;
Neininger, B. ;
Schneider, B. ;
Hueglin, C. ;
Ulrich, A. ;
Wichser, A. ;
Henne, S. ;
Brunner, D. ;
Kaegi, R. ;
Schwikowski, M. ;
Tobler, L. ;
Wienhold, F. G. ;
Engel, I. ;
Buchmann, B. ;
Peter, T. ;
Baltensperger, U. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2011, 11 (19) :10011-10030
[3]   Assessing in near real time the impact of the April 2010 Eyjafjallajokull ash plume on air quality [J].
Colette, Augustin ;
Favez, Olivier ;
Meleux, Frederik ;
Chiappini, Laura ;
Haeffelin, Martial ;
Morille, Yohann ;
Malherbe, Laure ;
Papin, Arnaud ;
Bessagnet, Bertrand ;
Menut, Laurent ;
Leoz, Eva ;
Rouil, Laurence .
ATMOSPHERIC ENVIRONMENT, 2011, 45 (05) :1217-1221
[4]   Widespread dispersal of Icelandic tephra: how does the Eyjafjoll eruption of 2010 compare to past Icelandic events? [J].
Davies, Siwan M. ;
Larsen, Gudrun ;
Wastegard, Stefan ;
Turney, Chris S. M. ;
Hall, Valerie A. ;
Coyle, Lisa ;
Thordarson, Thor .
JOURNAL OF QUATERNARY SCIENCE, 2010, 25 (05) :605-611
[5]  
Dawson J., 2011, IMPACTS VOLCANIC ASH
[6]  
Dugmore AJ, 1996, J QUATERNARY SCI, V11, P511, DOI 10.1002/(SICI)1099-1417(199611/12)11:6<511::AID-JQS284>3.0.CO
[7]  
2-C
[8]  
Gao F., 2011, BIOGEOSCI DISCUSS, V8, P3863, DOI [10.5194/bgd-8-3863-2011, DOI 10.5194/bgd-8-3863-2011]
[9]   THE ORIGIN OF ACCRETIONARY LAPILLI [J].
GILBERT, JS ;
LANE, SJ .
BULLETIN OF VOLCANOLOGY, 1994, 56 (05) :398-411
[10]   Development and validation of the volatile correction model for PM10 - An empirical method for adjusting TEOM measurements for their loss of volatile particulate matter [J].
Green, David C. ;
Fuller, Gary W. ;
Baker, Timothy .
ATMOSPHERIC ENVIRONMENT, 2009, 43 (13) :2132-2141