globalchange  > 过去全球变化的重建
DOI: 10.1002/eco.2093
WOS记录号: WOS:000474658500009
论文题名:
Ecosystem processes at the watershed scale: Influence of flowpath patterns of canopy ecophysiology on emergent catchment water and carbon cycling
作者: Lin, Laurence1; Band, Lawrence E.1,2; Vose, James M.3; Hwang, Taehee4; Miniat, Chelcy Ford5; Bolstad, Paul V.6
通讯作者: Lin, Laurence
刊名: ECOHYDROLOGY
ISSN: 1936-0584
EISSN: 1936-0592
出版年: 2019
卷: 12, 期:5
语种: 英语
英文关键词: carbon cycling ; ecohydrologic behaviour ; ecosystem resistance ; functional organization ; water use ; watershed
WOS关键词: NET PRIMARY PRODUCTION ; DISTRIBUTED HYDROLOGY ; STRUCTURAL COMPLEXITY ; HEMLOCK MORTALITY ; STOMATAL CONTROL ; CLIMATE-CHANGE ; VEGETATION ; DROUGHT ; DIVERSITY ; TERRAIN
WOS学科分类: Ecology ; Environmental Sciences ; Water Resources
WOS研究方向: Environmental Sciences & Ecology ; Water Resources
英文摘要:

Forest canopy water use and carbon cycling traits (WCT) can vary substantially and in spatially organized patterns, with significant impacts on watershed ecohydrology. In many watersheds, WCT may vary systematically along and between hydrologic flowpaths as an adaptation to available soil water, nutrients, and microclimate-mediated atmospheric water demand. We hypothesize that the emerging patterns of WCT at the hillslope to catchment scale provide a more resistant ecohydrological system, particularly with respect to drought stress, and the maintenance of high levels of productivity. Rather than attempting to address this hypothesis with species-specific patterns, we outline broader functional WCT groups and explore the sensitivity of water and carbon balances to the representation of canopy WCT functional organization through a modelling approach. We use a well-studied experimental watershed in North Carolina where detailed mapping of forest community patterns are sufficient to describe WCT functional organization. Ecohydrological models typically use broad-scale characterizations of forest canopy composition based on remotely sensed information (e.g., evergreen vs. deciduous), which may not adequately represent the range or spatial pattern of functional group WCT at hillslope to watershed scales. We use three different representations of WCT functional organizations: (1) restricting WCT to deciduous/conifer differentiation, (2) utilizing more detailed, but aspatial, information on local forest community composition, and (3) spatially distributed representation of local forest WCT. Accounting for WCT functional organization information improves model performance not only in terms of capturing observed flow regimes (especially watershed-scale seasonal flow dynamics) but also in terms of representing more detailed canopy ecohydrologic behaviour (e.g., root zone soil moisture, evapotranspiration, and net canopy photosynthesis), especially under dry condition. Results suggest that the well-known zonation of forest communities over hydrologic gradients is not just a local adaptation but also provides a property that regulates hillslope to catchment-scale behaviour of water use and drought resistance.


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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/141496
Appears in Collections:过去全球变化的重建

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作者单位: 1.Univ Virginia, Dept Environm Sci, Charlottesville, VA 22903 USA
2.Univ Virginia, Dept Engn Syst & Environm, Charlottesville, VA USA
3.US Forest Serv, Southern Res Stn, Raleigh, NC USA
4.Indiana Univ Bloomington, Dept Geog, Bloomington, IN USA
5.SRS, USDA, FS, Coweeta Hydrol Lab, Otto, NC USA
6.Univ Minnesota, Dept Forest Resources, St Paul, MN USA

Recommended Citation:
Lin, Laurence,Band, Lawrence E.,Vose, James M.,et al. Ecosystem processes at the watershed scale: Influence of flowpath patterns of canopy ecophysiology on emergent catchment water and carbon cycling[J]. ECOHYDROLOGY,2019-01-01,12(5)
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