Simple Models to Estimate Historical and Recent Changes of Total Organic Carbon Concentrations in Lakes

被引:23
作者
Valinia, Salar [1 ]
Futter, Martyn N. [1 ]
Cosby, Bernard J. [2 ]
Rosen, Peter [3 ]
Folster, Jens [1 ]
机构
[1] Swedish Univ Agr Sci, Dept Aquat Sci & Assessment, SE-75007 Uppsala, Sweden
[2] Environm Ctr Wales, Ctr Ecol & Hydrol, Bangor LL57 2UW, Gwynedd, Wales
[3] Umea Univ, Dept Ecol & Environm Sci, SE-90187 Umea, Sweden
关键词
LONG-TERM TRENDS; CLIMATE-CHANGE; ACID DEPOSITION; DRINKING-WATER; SURFACE WATERS; MATTER; EXPORT; CATCHMENTS; DYNAMICS; SOILS;
D O I
10.1021/es503170r
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Quantifying human impacts on the natural environment requires credible reconstructions of reference conditions. Anthropogenic acidification of surface waters is strongly influenced by total organic carbon (TOC) concentrations. Because both the degree of acidification and recovery are dependent on historical TOC concentrations, simple models to estimate changes in surface water TOC between reference conditions (1860) and the present day (2012) are needed. We used visible near infrared spectroscopy (VNIRS) of lake sediments to reconstruct reference condition TOC and long-term monitoring data to predict recent changes. Two empirical models were developed to predict: (i) historical TOC trends between reference conditions (1860) and peak acidification (1980) and (ii) trends in TOC between 1988 and 2012. The models were statistically robust with adj. R(2) of (i) 0.85 and (ii) 0.71, respectively. Models were driven by lake and catchment area, wetlands, historical sulfur deposition and water chemistry. Present day TOC concentrations are similar to VNIRS-reconstructed and modeled reference condition TOC in Swedish lakes. The results are valuable for understanding drivers of TOC changes in lakes and for more credible assessments of reference conditions needed for water management in Europe and elsewhere.
引用
收藏
页码:386 / 394
页数:9
相关论文
共 60 条
[1]  
Agren A., 2007, J GEOPHYS RES-BIOGEO, V112
[2]  
[Anonymous], 2003, EPA620R03001
[3]  
Appleby P.G., 2001, Tracking Environmental Change Using Lake Sediments, P171, DOI [DOI 10.1007/0-306-47669-X_9, 10.1007/0-306-47669-X9, DOI 10.1007/0-306-47669-X9, 10.1007/0-306-47669-x_9]
[4]  
Bragee P., 2013, Biogeosciences Discussions, v, V10, P19969, DOI DOI 10.5194/bgd-10-19969-2013
[5]   Lake ecosystem responses to catchment disturbance and airborne pollution: an 800-year perspective in southern Sweden [J].
Bragee, Petra ;
Choudhary, Preetam ;
Routh, Joyanto ;
Boyle, John F. ;
Hammarlund, Dan .
JOURNAL OF PALEOLIMNOLOGY, 2013, 50 (04) :545-560
[6]   Paleoecological evidence of major declines in total organic carbon concentrations since the nineteenth century in four nemoboreal lakes [J].
Cunningham, Laura ;
Bishop, Kevin ;
Mettavainio, Eva ;
Rosen, Peter .
JOURNAL OF PALEOLIMNOLOGY, 2011, 45 (04) :507-518
[7]   Long-term increase in dissolved organic carbon in streamwaters in Norway is response to reduced acid deposition [J].
De Wit, Heleen A. ;
Mulder, Jan ;
Hindar, Atle ;
Hole, Lars .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2007, 41 (22) :7706-7713
[8]   Examination of the potential relationship between droughts, sulphate and dissolved organic carbon at a wetland-draining stream [J].
Eimers, M. Catherine ;
Watmough, Shaun A. ;
Buttle, James M. ;
Dillon, Peter J. .
GLOBAL CHANGE BIOLOGY, 2008, 14 (04) :938-948
[9]   Long-term trends in dissolved organic carbon concentration: a cautionary note [J].
Eimers, M. Catherine ;
Watmough, Shaun A. ;
Buttle, James M. .
BIOGEOCHEMISTRY, 2008, 87 (01) :71-81
[10]   Effect of Acid Deposition on Quantity and Quality of Dissolved Organic Matter in Soil-Water [J].
Ekstrom, Sara M. ;
Kritzberg, Emma S. ;
Kleja, Dan B. ;
Larsson, Niklas ;
Nilsson, P. Anders ;
Graneli, Wilhelm ;
Bergkvist, Bo .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2011, 45 (11) :4733-4739