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Sensitivity of ecosystem-protected permafrost under changing boreal forest structures

Bibliographic Data

ID15548896
AuthorsSimone Maria Stuenzi (0000-0002-6071-289X, Alfred-Wegener-Institut Helmholtz-Zentrum für Polar- und Meeresforschung, corresponding author), Julia Boike (0000-0002-5875-2112, Alfred-Wegener-Institut Helmholtz-Zentrum für Polar- und Meeresforschung), Anne Gädeke (0000-0003-0514-2908, Leibniz Association), Ulrike Herzschuh (0000-0003-0999-1261, Alfred-Wegener-Institut Helmholtz-Zentrum für Polar- und Meeresforschung), Stefan Kruse (0000-0002-8930-9025, Alfred-Wegener-Institut Helmholtz-Zentrum für Polar- und Meeresforschung), Luidmila A Pestryakova (0000-0001-5347-4478, North-Eastern Federal University), Sebastian Westermann (0000-0003-0514-4321, University of Oslo), Moritz Langer (0000-0003-1981-0938, Alfred-Wegener-Institut Helmholtz-Zentrum für Polar- und Meeresforschung)
Year2021
Volume16
Issue8
Pages084045-084045
Publication date2021-07-16
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueEnvironmental Research Letters (JOURNAL)
Journal identifiersISSN: 1748-9326 • E-ISSN: 1748-9326
PublisherIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/ac153d
OpenAlexW3191812317
LanguageEN
Citations received2
References cited74

Boreal forests efficiently insulate underlying permafrost. The magnitude of this insulation effect is dependent on forest density and composition. A change therein modifies the energy and water fluxes within and below the canopy. The direct influence of climatic change on forests and the indirect effect through a change in permafrost dynamics lead to extensive ecosystem shifts such as a change in composition or density, which will, in turn, affect permafrost persistence. We derive future scenarios of forest density and plant functional type composition by analyzing future projections provided by the dynamic global vegetation model (LPJ-GUESS) under global warming scenarios. We apply a detailed permafrost-multilayer canopy model to study the spatial impact-variability of simulated future scenarios of forest densities and compositions for study sites throughout eastern Siberia. Our results show that a change in forest density has a clear effect on the ground surface temperatures (GST) and the maximum active layer thickness (ALT) at all sites, but the direction depends on local climate conditions. At two sites, higher forest density leads to a significant decrease in GSTs in the snow-free period, while leading to an increase at the warmest site. Complete forest loss leads to a deepening of the ALT up to 0.33 m and higher GSTs of over 8 ∘ C independently of local climatic conditions. Forest loss can induce both, active layer wetting up to four times or drying by 50%, depending on precipitation and soil type. Deciduous-dominated canopies reveal lower GSTs compared to evergreen stands, which will play an important factor in the spreading of evergreen taxa and permafrost persistence under warming conditions. Our study highlights that changing density and composition will significantly modify the thermal and hydrological state of the underlying permafrost. The induced soil changes will likely affect key forest functions such as the carbon pools and related feedback mechanisms such as swamping, droughts, fires, or forest loss

Atmospheric sciences · Boreal · Canopy · Climate change · Deciduous · Ecosystem · Evergreen · Forest ecology · Geography · Global warming · Meteorology · Permafrost · Physical geography · Precipitation · Taiga · Vegetation (pathology · Climate change and permafrost · Cryospheric studies and observations · Environmental Science · Plant Water Relations and Carbon Dynamics · Ecology · Geology

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Unique citing works2
Citations per year0,5
Citation span2022 - 2024 (3)
Citation velocityrecent
Highly citedNo
Citation typesNeutral: 2

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