globalchange  > 全球变化的国际研究计划
DOI: 10.1002/hyp.13450
WOS记录号: WOS:000478071700002
论文题名:
Sources and variability of CO2 in a prealpine stream gravel bar
作者: Boodoo, Kyle S.1,2; Schelker, Jakob1,2; Trauth, Nico3; Battin, Tom J.4; Schmidt, Christian3
通讯作者: Schelker, Jakob
刊名: HYDROLOGICAL PROCESSES
ISSN: 0885-6087
EISSN: 1099-1085
出版年: 2019
卷: 33, 期:17, 页码:2279-2299
语种: 英语
英文关键词: aerobic respiration ; carbon dioxide ; gravel bar ; hyporheic flow ; reactive modelling ; temperature
WOS关键词: CARBON-DIOXIDE EMISSIONS ; DISSOLVED ORGANIC-CARBON ; HYPORHEIC ZONE ; ECOSYSTEM METABOLISM ; ALPINE STREAM ; FLOW PATHS ; GROUNDWATER ; WATER ; TRANSPORT ; EVASION
WOS学科分类: Water Resources
WOS研究方向: Water Resources
英文摘要:

Gravel bars (GBs) contribute to carbon dioxide (CO2) emissions from stream corridors, with CO2 concentrations and emissions dependent on prevailing hydraulic, biochemical, and physicochemical conditions. We investigated CO2 concentrations and fluxes across a GB in a prealpine stream over three different discharge-temperature conditions. By combining field data with a reactive transport groundwater model, we were able to differentiate the most relevant hydrological and biogeochemical processes contributing to CO2 dynamics. GB CO2 concentrations showed significant spatial and temporal variability and were highest under the lowest flow and highest temperature conditions. Further, observed GB surface CO2 evasion fluxes, measured CO2 concentrations, and modelled aerobic respiration were highest at the tail of the GB over all conditions. Modelled CO2 transport via streamwater downwelling contributed the largest fraction of the measured GB CO2 concentrations (31% to 48%). This contribution increased its relative share at higher discharges as a result of a decrease in other sources. Also, it decreased from the GB head to tail across all discharge-temperature conditions. Aerobic respiration accounted for 17% to 36% of measured surface CO2 concentrations. Zoobenthic respiration was estimated to contribute between 4% and 8%, and direct groundwater CO2 inputs 1% to 23%. Unexplained residuals accounted for 6% to 37% of the observed CO2 concentrations at the GB surface. Overall, we highlight the dynamic role of subsurface aerobic respiration as a driver of spatial and temporal variability of CO2 concentrations and evasion fluxes from a GB. As hydrological regimes in prealpine streams are predicted to change following climatic change, we propose that warming temperatures combined with extended periods of low flow will lead to increased CO2 release via enhanced aerobic respiration in newly exposed GBs in prealpine stream corridors.


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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/145469
Appears in Collections:全球变化的国际研究计划

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作者单位: 1.Univ Vienna, Dept Limnol & Biooceanog, Althanstr 14, A-1090 Vienna, Austria
2.WasserCluster Lunz Biol Stn GmbH, EcoCatch, Lunz Am See, Austria
3.UFZ Helmholtz Ctr Environm Res, Dept Hydrogeol, Leipzig, Germany
4.Ecole Polytech Fed Lausanne, ENAC, Stream Biofilm & Ecosyst Res Lab, Lausanne, Switzerland

Recommended Citation:
Boodoo, Kyle S.,Schelker, Jakob,Trauth, Nico,et al. Sources and variability of CO2 in a prealpine stream gravel bar[J]. HYDROLOGICAL PROCESSES,2019-01-01,33(17):2279-2299
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