Floodplain biogeochemical mosaics: A multidimensional view of alluvial soils

被引:44
作者
Appling, Alison P. [1 ]
Bernhardt, Emily S. [2 ]
Stanford, Jack A. [3 ]
机构
[1] Duke Univ, Univ Program Ecol, Durham, NC USA
[2] Duke Univ, Dept Biol, Durham, NC USA
[3] Univ Montana, Flathead Lake Biol Stn, Polson, MT 59860 USA
基金
美国国家环境保护局;
关键词
floodplain; hyporheic; scaling; soil; denitrification; carbon; OLYMPIC-NATIONAL-PARK; ORGANIC-MATTER; RIPARIAN VEGETATION; PRIMARY SUCCESSION; RIVER; DENITRIFICATION; NITROGEN; CARBON; FOREST; SUBSURFACE;
D O I
10.1002/2013JG002543
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The alluvial floodplains of large rivers are exceptionally productive and dynamic ecosystems, characterized by a complex mosaic of vegetation at different successional stages overlying soils sorted by historic floods. Natural floodplains are widely credited with efficiently removing nitrogen from surface waters and accumulating carbon in biomass, yet very little floodplain research has examined carbon and nitrogen cycling below surficial soils. We evaluated the extent to which vegetation cover could be used to predict subsurface carbon and nitrogen dynamics and to estimate whole-floodplain carbon storage and denitrification rates. We dug soil pits under three dominant vegetation communities on a gravel-bedded floodplain in northwest Montana to the depth of the permanent water table (1-3m). We compared depth profiles of total and dissolved carbon (C) and nitrogen (N), denitrification potentials (DEAs), organic particulates, moisture, and pH across vegetation types. Near-surface soils (0-10cm) of forests had larger C and N pools and DEAs than grasslands or gravel bars, but such vegetation effects dissipated within the upper similar to 50cm of soil. At depth, spatial heterogeneity in carbon and nitrogen pools and fluxes depended instead on soil texture, and relatively high rates of DEA and carbon storage were measured in zones of buried organic debris. Although C storage and denitrification potential are generally low in subsurface soils, these deep soils might nonetheless contribute substantially to whole-floodplain C storage and denitrification because of their large volume, high hydrologic connectivity, and heterogeneous biogeochemistry.
引用
收藏
页码:1538 / 1553
页数:16
相关论文
共 66 条
[1]   Connectivity and biocomplexity in waterbodies of riverine floodplains [J].
Amoros, C ;
Bornette, G .
FRESHWATER BIOLOGY, 2002, 47 (04) :761-776
[2]  
[Anonymous], 2010, R LANG ENV STAT COMP
[3]  
[Anonymous], Web Soil Survey
[4]  
[Anonymous], METHODS SOIL ANAL 3
[5]   Hydrological variability, organic matter supply and denitrification in the Garonne River ecosystem [J].
Baker, MA ;
Vervier, P .
FRESHWATER BIOLOGY, 2004, 49 (02) :181-190
[6]   A Quantitative Model of Soil Organic Matter Accumulation During Floodplain Primary Succession [J].
Bechtold, J. Scott ;
Naiman, Robert J. .
ECOSYSTEMS, 2009, 12 (08) :1352-1368
[7]  
Bechtold SJ, 2006, SOIL BIOL BIOCHEM, V38, P1325, DOI DOI 10.1016/J.SOILBIO.2005.09.028
[8]   Spatial Distribution of Carbon in the Subsurface of Riparian Zones [J].
Blazejewski, Gary A. ;
Stolt, Mark H. ;
Gold, Arthur J. ;
Gurwick, Noel ;
Groffman, Peter M. .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 2009, 73 (05) :1733-1740
[9]   The functional significance of the hyporheic zone in streams and rivers [J].
Boulton, AJ ;
Findlay, S ;
Marmonier, P ;
Stanley, EH ;
Valett, HM .
ANNUAL REVIEW OF ECOLOGY AND SYSTEMATICS, 1998, 29 :59-81
[10]   ORGANIC MATTER DISTRIBUTION IN FLOODPLAINS CAN BE PREDICTED USING SPATIAL AND VEGETATION STRUCTURE DATA [J].
Cierjacks, A. ;
Kleinschmit, B. ;
Kowarik, I. ;
Graf, M. ;
Lang, F. .
RIVER RESEARCH AND APPLICATIONS, 2011, 27 (08) :1048-1057