Belowground carbon turnover in a temperate ombrotrophic bog

被引:58
作者
Blodau, Christian [1 ]
Roulet, Nigel T.
Heitmann, Tobias
Stewart, Heather
Beer, Julia
Lafleur, Peter
Moore, Tim R.
机构
[1] Univ Bayreuth, Limnol Res Stn, D-95444 Bayreuth, Germany
[2] Univ Bayreuth, Dept Hydrol, D-95444 Bayreuth, Germany
[3] McGill Univ, Dept Geog, Montreal, PQ H3A 2K6, Canada
[4] McGill Univ, Global Environm & Climate Change Ctr, Montreal, PQ H3A 2K6, Canada
[5] Trent Univ, Dept Geog, Peterborough, ON K9J 7B8, Canada
关键词
D O I
10.1029/2005GB002659
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
[1] To examine belowground carbon (C) turnover in peatlands, we measured fluxes of carbon dioxide (CO(2)) and methane (CH(4)) by chamber measurements, estimated respiration by in situ incubations of peat, and in situ production of dissolved carbon (CO(2); CH(4); and dissolved organic carbon, DOC) by pore water modeling at an ombrotrophic temperate bog. Ecosystem respiration (ER) averaged 205 mmol m(-2) d(-1) in summer and was related to temperature, but not water table position, and in situ rates of heterotrophic respiration in the unsaturated zone were also temperature-dependent, with Q(10) = 5.0 - 6.4. In the saturated zone, concentrations of 0.1 - 2.5 mmol L(-1) (CO(2)), 0 to 0.6 mmol L(-1) (CH(4)), and < 10 - 120 mg L(-1) (DOC) were recorded. Turnover was dominated by DOC unrelated to respiration, which ranged from < 0.5 to 7 mmol m(-2) d(-1) and amounted on average to < 1% of ER. Peat decomposition constants k(d) were 0.060 yr(-1) to 0.034 yr(-1) in the unsaturated and < 0.002 yr(-1) in the saturated zone. Monthly averages of CH(4) fluxes ranged from 0 to 1.6 mmol m(-2) d(-1) and were higher than modeled diffusive fluxes when threshold concentrations for CH(4) ebullition were recorded closer to the peatland surface. Our results suggest that the saturated zone is of little relevance to ER in this dry temperate bog and that mobilization of DOC is a potentially more relevant process. Temperature is a more important control on ER than water table position because most of the ER is generated close to the peatland surface. Concurrent, moderate increases in temperature and soil moisture are thus likely to increase losses of CO(2) from ER and of CH(4) from this type of peatland.
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页数:12
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共 54 条
[1]   Interpretation of measured concentration profiles in sediment pore water [J].
Berg, P ;
Risgaard-Petersen, N ;
Rysgaard, S .
LIMNOLOGY AND OCEANOGRAPHY, 1998, 43 (07) :1500-1510
[2]   Microbial carbon mineralisation in an acid surface peat: effects of environmental factors in laboratory incubations [J].
Bergman, I ;
Lundberg, P ;
Nilsson, M .
SOIL BIOLOGY & BIOCHEMISTRY, 1999, 31 (13) :1867-1877
[3]   Carbon turnover in peatland mesocosms exposed to different water table levels [J].
Blodau, C ;
Basiliko, N ;
Moore, TR .
BIOGEOCHEMISTRY, 2004, 67 (03) :331-351
[4]   Micro-scale CO2 and CH4 dynamics in a peat soil during a water fluctuation and sulfate pulse [J].
Blodau, C ;
Moore, TR .
SOIL BIOLOGY & BIOCHEMISTRY, 2003, 35 (04) :535-547
[5]   Macroporosity affects water movement and pore water sampling in peat soils [J].
Blodau, C ;
Moore, TR .
SOIL SCIENCE, 2002, 167 (02) :98-109
[6]  
Blodau C, 2002, ARCH HYDROBIOL, V154, P561
[7]   Roots exert a strong influence on the temperature sensitivity of soil respiration [J].
Boone, RD ;
Nadelhoffer, KJ ;
Canary, JD ;
Kaye, JP .
NATURE, 1998, 396 (6711) :570-572
[8]  
Bridgham SD, 1998, ECOLOGY, V79, P1545, DOI 10.1890/0012-9658(1998)079[1545:CNAPMI]2.0.CO
[9]  
2
[10]   POTENTIAL FEEDBACKS OF NORTHERN WETLANDS ON CLIMATE-CHANGE - AN OUTLINE OF AN APPROACH TO PREDICT CLIMATE-CHANGE IMPACT [J].
BRIDGHAM, SD ;
JOHNSTON, CA ;
PASTOR, J ;
UPDEGRAFF, K .
BIOSCIENCE, 1995, 45 (04) :262-274