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Connecting Atmosphere and Wetland

Energy and Water Vapour Exchange

Datos Bibliográficos

ID7784871
AutoresPeter M Lafleur (0000-0003-0347-9128, Trent University, autor de correspondencia)
Año2008
Volumen2
Número4
Páginas1027-1057
Fecha de publicación2008-07-01
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaGeography Compass (JOURNAL)
Identificadores de la revistaISSN: 1749-8198 • E-ISSN: 1749-8198
EditorialWiley (PUBLISHER • GB)
DOI10.1111/j.1749-8198.2007.00132.x
OpenAlexW2040822958
IdiomaEN
Citas recibidas3
Referencias citadas80

Wetlands are ubiquitous over the globe, comprise a vast array of ecosystem types and are of great ecological and social importance. Their functioning is intimately tied to the atmosphere by the energy and mass exchanges that take place across the wetland–atmosphere boundary. This article examines recent research into these exchanges, with an emphasis on the water vapour exchange. Although broad classes of wetland type, such as fen, bog and marsh, can be defined using ecological or hydrologic metrics, distinct difference in energy exchanges between the classes cannot be found. This arises because there are many factors that control the energy exchanges and interplay of these factors is unique to every wetland ecosystem. Wetlands are more similar in their radiation balances than in the partitioning of this energy into conductive and turbulent heat fluxes. This is especially true of evapotranspiration (ET) rates, which vary considerably among and within wetland classes. A global survey of wetland ET studies shows that location has little to do with ET rates and that variation in rates is largely determined by local climate and wetland characteristics. Recent modelling studies suggest that although wetlands occupy a small portion of the global land surface, their water and energy exchanges may be important in regional and global climates. Although the number of studies of wetland–atmosphere interactions has increased in recent years more research is needed. Five key areas of study are identified: (i) the importance of moss covers, (ii) lack of study in tropical systems, (iii) inclusion of wetlands in global climate models, (iv) importance of microforms in wetlands and their scaling to the whole ecosystem, and (v) the paucity of annual ET measurements

Biology · Bog · Earth science · Ecosystem · Evapotranspiration · Geography · Marsh · Meteorology · Peat · Wetland · Environmental Science · Hydrology and Watershed Management Studies · Peatlands and Wetlands Ecology · Plant Water Relations and Carbon Dynamics · Ecology · Geology

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    Open Access•Manuel Helbig, J M Waddington et al.•Environmental Research Letters•2020

  • Heterogeneous climate impacts on spring phenology of China's wetlands

    Open Access•Kaidong Feng, Dehua Mao et al.•Environmental Impact Assessment…•2026

  • Connecting Atmosphere and Wetland

    Open Access•Peter M Lafleur•Geography Compass•2009

  • Development and validation of a global database of lakes, reservoirs and wetlands

    Open Access•Bernhard Lehner, Peter Doll et al.•Journal of Hydrology•2004

  • Natural evaporation from open water, bare soil and grass

    Open Access•Howard Latimer Penman•Proceedings of the Royal Society…•1948

Obras citantes distintas3
Citas por año0,18
Intervalo de citas2009 - 2026 (18)
Velocidad de citacióncurrent
Altamente citadoNo
Tipos de citaNeutras: 3
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