Methane emissions, groundwater levels and redox potentials of common wetland soils in a temperate-humid climate

被引:53
作者
Fiedler, S [1 ]
Sommer, M
机构
[1] Univ Hohenheim, Inst Soil Sci & Land Evaluat, D-70593 Stuttgart, Germany
[2] Natl Res Ctr Environm & Hlth, Inst Biomath & Biometry, D-85764 Neuherberg, Germany
关键词
D O I
10.1029/1999GB001255
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Typical groundwater soils in a temperate-humid climate were investigated for the relationship between methane emissions and dynamic (groundwater level, redox status) as well as static soil properties over 2 years (July 1996 to July 1998, weekly probing, static chamber). High unit area emissions, like annual (5-73 g CH4 m(-2) yr(-1)) or mean daily fluxes (15-244 mg CH4 m(-2) d(-1)) were observed at the wetter sites. Oxidation seemed to be the controlling subscale process for the emissions observed: Time with Eh above -75mV in the upper 20 cm was inversely correlated to net CH4 fluxes (nonlinear). Two factors, namely groundwater level and the quality of soil organic matter (SOM), built a factor hierarchy to control methane emission. Thereby SOM is strongly influenced by the land use practices, for example, erosional and depositional processes in a catchment. Soil morphology corresponded to static (e.g., Mn-d, Fe-d) and dynamic soil properties like groundwater level or redox potentials. Because the linkage to Eh regional or global scale methane emissions may be estimated by coupling unit area emissions to soil maps based on soil morphology (e.g., soil taxonomy). Calculations of our own results exemplified (1) the significance of a representative set of unit areas for each climatic zone and (2) the potential importance of the temperate climatic zone for global methane budget.
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页码:1081 / 1093
页数:13
相关论文
共 56 条
[1]  
Augustin J, 1996, J APPL BOT-ANGEW BOT, V70, P45
[2]   METHANE FLUX FROM THE CENTRAL AMAZONIAN FLOODPLAIN [J].
BARTLETT, KB ;
CRILL, PM ;
SEBACHER, DI ;
HARRISS, RC ;
WILSON, JO ;
MELACK, JM .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1988, 93 (D2) :1571-1582
[3]   REVIEW AND ASSESSMENT OF METHANE EMISSIONS FROM WETLANDS [J].
BARTLETT, KB ;
HARRISS, RC .
CHEMOSPHERE, 1993, 26 (1-4) :261-320
[4]   Gas fluxes achieved by in situ convective flow in Phragmites australis [J].
Brix, H ;
Sorrell, BK ;
Schierup, HH .
AQUATIC BOTANY, 1996, 54 (2-3) :151-163
[5]   THE RELATIONSHIP OF VEGETATION TO METHANE EMISSION AND HYDROCHEMICAL GRADIENTS IN NORTHERN PEATLANDS [J].
BUBIER, JL .
JOURNAL OF ECOLOGY, 1995, 83 (03) :403-420
[6]   METHANE FLUX AND STABLE HYDROGEN AND CARBON ISOTOPE COMPOSITION OF SEDIMENTARY METHANE FROM THE FLORIDA EVERGLADES [J].
Burke, Roger, Jr. ;
Barber, Timothy ;
Sackett, William .
GLOBAL BIOGEOCHEMICAL CYCLES, 1988, 2 (04) :329-340
[7]   METHANE EMISSION FROM ARCTIC TUNDRA [J].
CHRISTENSEN, TR .
BIOGEOCHEMISTRY, 1993, 21 (02) :117-139
[8]  
CROZIER CR, 1995, SOILS GLOBAL CHANGE, P247
[9]   THE GROWTH-RATE AND DISTRIBUTION OF ATMOSPHERIC METHANE [J].
DLUGOKENCKY, EJ ;
STEELE, LP ;
LANG, PM ;
MASARIE, KA .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1994, 99 (D8) :17021-17043
[10]  
*DWD, 1953, KLIM BAD WURTT