Holocene carbon burial by lakes in SW Greenland

被引:81
作者
Anderson, N. J. [1 ]
D'Andrea, W. [2 ,3 ]
Fritz, S. C. [2 ,3 ]
机构
[1] Univ Loughborough, Dept Geog, Loughborough LE11 3TU, Leics, England
[2] Univ Nebraska, Dept Geosci, Lincoln, NE 68588 USA
[3] Univ Nebraska, Sch Biol Sci, Lincoln, NE 68588 USA
关键词
arctic; carbon; mineralization; soils; tundra; WEST GREENLAND; ORGANIC-CARBON; ARCTIC LAKES; SEDIMENTS; TEMPERATURE; CLIMATE; ACCUMULATION; VARIABILITY; VEGETATION; RECORDS;
D O I
10.1111/j.1365-2486.2009.01942.x
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
The role of the Arctic in future global change processes is predicted to be important because of the large carbon (C) stocks contained in frozen soils and peatlands. Lakes are an important component of arctic landscapes although their role in storing C is not well prescribed. The area around Kangerlussuaq, SW Greenland (66-68 degrees N, 49-54 degrees W) has extremely high lake density, with similar to 20 000 lakes that cover about 14% of the land area. C accumulation rates and standing stock (kg Cm(-2)), representing late- to mid-Holocene C burial, were calculated from AMS (14)C-dated sediment cores from 11 lakes. Lake ages range from similar to 10 000 cal yr BP to similar to 5400 cal yr BP, and reflect the withdrawal of the ice sheet from west to east. Total standing stock of C accumulated in the studied lakes for the last similar to 8000 years ranged from 28 to 71 kg C m(-2), (mean: similar to 42 kg C m(-2)). These standing stock determinations yield organic C accumulation rates of 3.5-11.5 g C m(-2) yr(-1) (mean: similar to 6 g C m(-2) yr(-1)) for the last 4500 years. Mean C accumulation rates are not different for the periods 8-4.5 and 4.5-0 ka, despite cooling trends associated with the neoglacial period after 4.5 ka. We used the mean C standing stock to estimate the total C pool in small lakes (<100 ha) of the Kangerlussuaq region to be similar to 4.9 x 10(13) g C. This C stock is about half of that estimated for the soil pool in this region (but in 5% of the land area) and indicates the importance of incorporating lakes into models of regional C balance at high latitudes.
引用
收藏
页码:2590 / 2598
页数:9
相关论文
共 47 条
[1]   Role of lakes for organic carbon cycling in the boreal zone [J].
Algesten, G ;
Sobek, S ;
Bergström, AK ;
Ågren, A ;
Tranvik, LJ ;
Jansson, M .
GLOBAL CHANGE BIOLOGY, 2004, 10 (01) :141-147
[2]   Climate versus in-lake processes as controls on the development of community structure in a low-arctic lake (South-West greenland) [J].
Anderson, N. John ;
Brodersen, Klaus P. ;
Ryves, David B. ;
McGowan, Suzanne ;
Johansson, Liselotte S. ;
Jeppesen, Erik ;
Leng, Melanie J. .
ECOSYSTEMS, 2008, 11 (02) :307-324
[3]   The effect of evapoconcentration on dissolved organic carbon concentration and quality in lakes of SW Greenland [J].
Anderson, N. John. ;
Stedmon, Colin A. .
FRESHWATER BIOLOGY, 2007, 52 (02) :280-289
[4]   Increased aridity during the early Holocene in West Greenland inferred from stable isotopes in laminated-lake sediments [J].
Anderson, NJ ;
Leng, MJ .
QUATERNARY SCIENCE REVIEWS, 2004, 23 (7-8) :841-849
[5]   Dominant factors controlling variability in the ionic composition of West Greenland Lakes [J].
Anderson, NJ ;
Harriman, R ;
Ryves, DB ;
Patrick, ST .
ARCTIC ANTARCTIC AND ALPINE RESEARCH, 2001, 33 (04) :418-425
[6]  
Bliss L.C., 1992, ARCTIC ECOSYSTEMS CH, P59, DOI DOI 10.1016/B978-0-12-168250-7.50010-9
[7]  
BOCHER TYGE W., 1949, MEDDELELSER OM GRONLAND, V147, P1
[8]   Arctic and boreal ecosystems of western North America as components of the climate system [J].
Chapin, FS ;
McGuire, AD ;
Randerson, J ;
Pielke, R ;
Baldocchi, D ;
Hobbie, SE ;
Roulet, N ;
Eugster, W ;
Kasischke, E ;
Rastetter, EB ;
Zimov, SA ;
Running, SW .
GLOBAL CHANGE BIOLOGY, 2000, 6 :211-223
[9]   Plumbing the global carbon cycle: Integrating inland waters into the terrestrial carbon budget [J].
Cole, J. J. ;
Prairie, Y. T. ;
Caraco, N. F. ;
McDowell, W. H. ;
Tranvik, L. J. ;
Striegl, R. G. ;
Duarte, C. M. ;
Kortelainen, P. ;
Downing, J. A. ;
Middelburg, J. J. ;
Melack, J. .
ECOSYSTEMS, 2007, 10 (01) :171-184
[10]  
Cotner James B., 2004, Aquatic Ecosystem Health & Management, V7, P451, DOI 10.1080/14634980490513292