Wetland regions are important components of the local climate, with their own characteristic surface energy and moisture budgets. Realistic representation of wetlands, including the important Vegetation component, may therefore be necessary for more accurate simulations of climate and climate change. However, many land-atmosphere coupled models either ignore wetlands or treat wetlands as bare, water-saturated soil, neglecting the vegetation present within wetland environments. This study investigates the possible response of the mid-Holocene climate of North Africa to changes in orbital forcing, both with and without the presence of wetlands. The location of these wetlands is guided by analysis of paleovegetation and wetland distribution. In this study, the wetland regime in the land surface component of a climate model was modified to incorporate vegetation. Field measurements have shown that vegetation affects water loss associated with evaporation (including transpiration) within a wetland area. Comparisons between non-vegetated wetland and vegetated wetland revealed an increase in local albedo that produced an associated decrease in net radiation, evaporation and precipitation in the vicinity of the wetlands regions. Based on an analysis of the model surface water balance, the calculated area of mid-Holocene wetland coverage for North Africa closely matches the observed. For the North African region as a whole, the effects of adding vegetation to the wetland produced relatively small changes in climate, but local recycling of water may have served to help maintain paleo wetland communities.
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Macquarie Univ, Dept Biol Sci, N Ryde, NSW 2109, Australia
Univ Reading, Ctr Climate Change, Reading RG6 6AH, Berks, England
Univ Reading, Sch Archaeol Geog & Environm Sci, Reading RG6 6AH, Berks, EnglandMacquarie Univ, Dept Biol Sci, N Ryde, NSW 2109, Australia
Harrison, S. P.
Bartlein, P. J.
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Univ Oregon, Dept Geog, Eugene, OR 97403 USAMacquarie Univ, Dept Biol Sci, N Ryde, NSW 2109, Australia
Bartlein, P. J.
Brewer, S.
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Univ Utah, Dept Geog, Salt Lake City, UT USAMacquarie Univ, Dept Biol Sci, N Ryde, NSW 2109, Australia
Brewer, S.
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Prentice, I. C.
Boyd, M.
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Stockholm Univ, Bert Bolin Ctr Climate Res, S-10691 Stockholm, Sweden
Stockholm Univ, Dept Phys Geog & Quaternary Geol, S-10691 Stockholm, SwedenMacquarie Univ, Dept Biol Sci, N Ryde, NSW 2109, Australia
Boyd, M.
Hessler, I.
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Macquarie Univ, Dept Biol Sci, N Ryde, NSW 2109, Australia
Univ Bremen, Ctr Marine Environm Sci, MARUM, D-28359 Bremen, GermanyMacquarie Univ, Dept Biol Sci, N Ryde, NSW 2109, Australia
Hessler, I.
Holmgren, K.
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Stockholm Univ, Bert Bolin Ctr Climate Res, S-10691 Stockholm, Sweden
Stockholm Univ, Dept Phys Geog & Quaternary Geol, S-10691 Stockholm, SwedenMacquarie Univ, Dept Biol Sci, N Ryde, NSW 2109, Australia
Holmgren, K.
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Izumi, K.
Willis, K.
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Macquarie Univ, Dept Biol Sci, N Ryde, NSW 2109, AustraliaMacquarie Univ, Dept Biol Sci, N Ryde, NSW 2109, Australia
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Chinese Acad Sci, Inst Atmospher Phys, Nansen Zhu Int Res Ctr, Beijing, Peoples R China
Univ Chinese Acad Sci, Beijing, Peoples R ChinaChinese Acad Sci, Inst Atmospher Phys, Nansen Zhu Int Res Ctr, Beijing, Peoples R China
Tian, Z.
Jiang, D.
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Chinese Acad Sci, Inst Atmospher Phys, Nansen Zhu Int Res Ctr, Beijing, Peoples R China
Chinese Acad Sci, Key Lab Reg Climate Environm Res Temperate East A, Beijing, Peoples R China
Chinese Acad Sci, Climate Change Res Ctr, Beijing, Peoples R ChinaChinese Acad Sci, Inst Atmospher Phys, Nansen Zhu Int Res Ctr, Beijing, Peoples R China