Acidification in European mountain lake districts:: A regional assessment of critical load exceedance

被引:37
作者
Curtis, CJ
Botev, I
Camarero, L
Catalan, J
Cogalniceanu, D
Hughes, M
Kernan, M
Kopácek, J
Korhola, A
Psenner, R
Rogora, M
Stuchlík, E
Veronesi, M
Wright, RF
机构
[1] Environm Change Res Ctr, London WC1H 0AP, England
[2] Bulgarian Acad Sci, Inst Zool, Sofia 1000, Bulgaria
[3] CSIC, CEAB, Limnol Grp, Blanes 17300, Spain
[4] Univ Bucharest, Dept Ecol, Bucharest 76201, Romania
[5] Acad Sci Czech Republ, CZ-37005 Ceske Budejovice, Czech Republic
[6] Univ Helsinki, Dept Biol & Environm Sci, Div Aquat Sci, ECRU, FIN-00014 Helsinki, Finland
[7] Univ Innsbruck, Inst Zool & Limnol, A-6020 Innsbruck, Austria
[8] CNR, Inst Ecosyst Study, I-28922 Verbania, Italy
[9] Charles Univ Prague, CZ-12844 Prague, Czech Republic
[10] SPAAS, Uff Protez & Depuraz Acque, CH-6900 Paradiso Lugano, Switzerland
[11] Norway Inst Water Res, N-0411 Oslo, Norway
关键词
FAB model; sulphur; nitrogen; EMERGE; regionalisation; alpine lakes;
D O I
10.1007/s00027-005-0742-0
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
High mountain lakes are sensitive to environmental change and the effects of air pollution and lake acidification have been recorded in many countries. The EU funded EMERGE programme included a pan-European assessment of the extent of acidification in mountain lakes located above the tree-line. A static critical loads model, the First-order Acidity Balance (FAB) model, was used to assess (1) the extent of critical load exceedance in 300 lakes in nine European lake districts and (2) the relative importance of sulphur and nitrogen deposition in contributing to acidification. The regional sensitivity of FAB to the choice of critical acid neutralising capacity (ANC: 0 or 20 mu eq L-1) was explored. With a critical ANC value of 0 mu eq L-1 only four lake districts had sites showing exceedance of critical loads; Piedmont Ticino, the Pyrenees, the Retezat Mountains and the Tatras. When a more stringent critical ANC of 20 mu eq L-1 was used, all nine lake districts showed critical load exceedance in one or more lakes. For two lake districts, the Retezat Mountains of Romania and the Rila Mountains of Bulgaria, critical load exceedance is recorded here for the first time. Nitrogen is a more important agent of acidification in some areas such as the Pyrenees and Piedmont Ticino, and its relative importance is likely to increase elsewhere as pan-European measures to reduce sulphur deposition continue to take effect. Given the coarse scale deposition data used and potentially underestimated loads at high altitudes, the extent of the acidification problem may be under-represented here.
引用
收藏
页码:237 / 251
页数:15
相关论文
共 54 条
[41]   A critical limit for acid neutralizing capacity in Norwegian surface waters, based on new analyses of fish and invertebrate responses [J].
Lien, L ;
Raddum, GG ;
Fjellheim, A ;
Henriksen, A .
SCIENCE OF THE TOTAL ENVIRONMENT, 1996, 177 :173-193
[42]  
MARCHETTO A, 1994, AMBIO, V23, P150
[43]  
MOSELLO R, 1997, MOLAR MEASURING MODE, P24
[44]  
MOSELLO R, 1997, MOLAR MEASURING MODE, P20
[45]  
MOSELLO R, 2002, WATER AIR SOIL POLL, V2, P75, DOI DOI 10.1023/A:1020138221582
[46]   Exceedance of critical loads for lakes in Finland, Norway, and Sweden: Reduction requirements for acidifying nitrogen and sulfur deposition [J].
Posch, M ;
Kamari, J ;
Forsius, M ;
Henriksen, A ;
Wilander, A .
ENVIRONMENTAL MANAGEMENT, 1997, 21 (02) :291-304
[47]   CLIMATE-DRIVEN PH CONTROL OF REMOTE ALPINE LAKES AND EFFECTS OF ACID DEPOSITION [J].
PSENNER, R ;
SCHMIDT, R .
NATURE, 1992, 356 (6372) :781-783
[48]   Trends in the chemistry of atmospheric deposition and surface waters in the Lake Maggiore catchment [J].
Rogora, M ;
Marchetto, A ;
Mosello, R .
HYDROLOGY AND EARTH SYSTEM SCIENCES, 2001, 5 (03) :379-390
[49]  
Simpson D., 2003, 12003 EMEP
[50]  
Skjelkvale BL, 1998, AMBIO, V27, P280