TY - JOUR A1 - Radosavljevic, Boris A1 - Lantuit, Hugues A1 - Knoblauch, Christian A1 - Couture, Nicole A1 - Herzschuh, Ulrike A1 - Fritz, Michael T1 - Arctic nearshore sediment dynamics - an example from Herschel Island - Qikiqtaruk, Canada JF - Journal of marine science and engineering N2 - Increasing arctic coastal erosion rates imply a greater release of sediments and organic matter into the coastal zone. With 213 sediment samples taken around Herschel Island-Qikiqtaruk, Canadian Beaufort Sea, we aimed to gain new insights on sediment dynamics and geochemical properties of a shallow arctic nearshore zone. Spatial characteristics of nearshore sediment texture (moderately to poorly sorted silt) are dictated by hydrodynamic processes, but ice-related processes also play a role. We determined organic matter (OM) distribution and inferred the origin and quality of organic carbon by C/N ratios and stable carbon isotopes delta C-13. The carbon content was higher offshore and in sheltered areas (mean: 1.0 wt.%., S.D.: 0.9) and the C/N ratios also showed a similar spatial pattern (mean: 11.1, S.D.: 3.1), while the delta C-13 (mean: -26.4 parts per thousand VPDB, S.D.: 0.4) distribution was more complex. We compared the geochemical parameters of our study with terrestrial and marine samples from other studies using a bootstrap approach. Sediments of the current study contained 6.5 times and 1.8 times less total organic carbon than undisturbed and disturbed terrestrial sediments, respectively. Therefore, degradation of OM and separation of carbon pools take place on land and continue in the nearshore zone, where OM is leached, mineralized, or transported beyond the study area. KW - permafrost KW - Arctic Ocean KW - stable carbon isotopes KW - nitrogen KW - sediment KW - chemistry KW - sediment dynamics KW - Beaufort Sea KW - grain size Y1 - 2022 U6 - https://doi.org/10.3390/jmse10111589 SN - 2077-1312 VL - 10 IS - 11 PB - MDPI CY - Basel ER - TY - JOUR A1 - Schulte, Luise A1 - Li, Chenzhi A1 - Lisovski, Simeon A1 - Herzschuh, Ulrike T1 - Forest-permafrost feedbacks and glacial refugia help explain the unequal distribution of larch across continents JF - Journal of biogeography N2 - Aim: The continental-scale distribution of plant functional types, such as evergreen and summergreen needle-leaf forest, is assumed to be determined by contemporary climate. However, the distribution of summergreen needle-leaf forest of larch (Larix Mill.) differs markedly between the continents, despite relatively similar climatic conditions. The reasons for these differences are little understood. Our aim is to identify potential triggers and drivers of the current distribution patterns by comparing species' bioclimatic niches, glacial refugia and postglacial recolonization patterns. Location: Northern hemisphere. Taxon: Species of the genus Larix (Mill.). Methods: We compare species distribution and dominance using species ranges and sites of dominance, as well as their occurrence on modelled permafrost extent, and active layer thickness (ALT). We compare the bioclimatic niches and calculate the niche overlap between species, using the same data in addition to modern climate data. We synthesize pollen, macrofossil and ancient DNA palaeo-evidence of past Larix occurrences of the last 60,000 years and track differences in distribution patterns through time. Results: Bioclimatic niches show large overlaps between Asian larch species and American Larix laricina. The distribution across various degrees of permafrost extent is distinctly different for Asian L. gmelinii and L. cajanderi compared to the other species, whereas the distribution on different depths of ALT is more similar among Asian and American species. Northern glacial refugia for Larix are only present in eastern Asia and Alaska. Main Conclusion: The dominance of summergreen larches in Asia, where evergreen conifers dominate most of the rest of the boreal forests, is dependent on the interaction of several factors which allows Asian L. gmelinii and L. cajanderi to dominate where these factors coincide. These factors include the early postglacial spread out of northern glacial refugia in the absence of competitors as well as a positive feedback mechanism between frozen ground and forest. KW - bioclimatic niche KW - glacial refugia KW - larch KW - Larix KW - permafrost KW - phylogeography KW - postglacial recolonization Y1 - 2022 U6 - https://doi.org/10.1111/jbi.14456 SN - 0305-0270 SN - 1365-2699 VL - 49 IS - 10 SP - 1825 EP - 1838 PB - Wiley CY - Hoboken ER - TY - JOUR A1 - Muster, Sina A1 - Riley, William J. A1 - Roth, Kurt A1 - Langer, Moritz A1 - Aleina, Fabio Cresto A1 - Koven, Charles D. A1 - Lange, Stephan A1 - Bartsch, Annett A1 - Grosse, Guido A1 - Wilson, Cathy J. A1 - Jones, Benjamin M. A1 - Boike, Julia T1 - Size distributions of arctic waterbodies reveal consistent relations in their statistical moments in space and time JF - Frontiers in Earth Science N2 - Arctic lowlands are characterized by large numbers of small waterbodies, which are known to affect surface energy budgets and the global carbon cycle. Statistical analysis of their size distributions has been hindered by the shortage of observations at sufficiently high spatial resolutions. This situation has now changed with the high-resolution (<5 m) circum-Arctic Permafrost Region Pond and Lake (PeRL) database recently becoming available. We have used this database to make the first consistent, high-resolution estimation of Arctic waterbody size distributions, with surface areas ranging from 0.0001 km(2) (100 m(2)) to 1 km(2). We found that the size distributions varied greatly across the thirty study regions investigated and that there was no single universal size distribution function (including power-law distribution functions) appropriate across all of the study regions. We did, however, find close relationships between the statistical moments (mean, variance, and skewness) of the waterbody size distributions from different study regions. Specifically, we found that the spatial variance increased linearly with mean waterbody size (R-2 = 0.97, p < 2.2e-16) and that the skewness decreased approximately hyperbolically. We have demonstrated that these relationships (1) hold across the 30 Arctic study regions covering a variety of (bio)climatic and permafrost zones, (2) hold over time in two of these study regions for which multi-decadal satellite imagery is available, and (3) can be reproduced by simulating rising water levels in a high-resolution digital elevation model. The consistent spatial and temporal relationships between the statistical moments of the waterbody size distributions underscore the dominance of topographic controls in lowland permafrost areas. These results provide motivation for further analyses of the factors involved in waterbody development and spatial distribution and for investigations into the possibility of using statistical moments to predict future hydrologic dynamics in the Arctic. KW - permafrost KW - hydrology KW - waterbodies KW - size distribution KW - thermokarst KW - statistical moments KW - ponds KW - lakes Y1 - 2019 U6 - https://doi.org/10.3389/feart.2019.00005 SN - 2296-6463 VL - 7 PB - Frontiers Research Foundation CY - Lausanne ER - TY - JOUR A1 - Drewes, Julia A1 - Moreiras, Stella A1 - Korup, Oliver T1 - Permafrost activity and atmospheric warming in the Argentinian Andes JF - Geomorphology : an international journal on pure and applied geomorphology N2 - Rock glaciers are permafrost or glacial landforms of debris and ice that deform under the influence of gravity. Recent estimates hold that, in the semiarid Chilean Andes for example, active rock glaciers store more water than glaciers. However, little is known about how many rock glaciers might decay because of global warming and how much this decay might contribute to water and sediment release. We investigated an inventory of >6500 rock glaciers in the Argentinian Andes, spanning the climatic gradient from the Desert Andes to cold-temperate Tierra del Fuego. We used active rock glaciers as a diagnostic of permafrost, assuming that the toes mark the 0 degrees C isotherm in climate scenarios for the twenty-first century and their impact on freezing conditions near the rock glacier toes. We find that, under future worst case warming, up to 95% of rock glaciers in the southern Desert Andes and in the Central Andes will rest in areas above 0 degrees C and that this freezing level might move up more than twice as much (similar to 500 m) as during the entire Holocene (similar to 200 m). Many active rock glaciers are already well below the current freezing level and exemplify how local controls may confound regional prognoses. A Bayesian Multifactor Analysis of Variance further shows that only in the Central Andes are the toes of active rock glaciers credibly higher than those of inactive ones. Elsewhere in the Andes, active and inactive rock glaciers occupy indistinguishable elevation bands, regardless of aspect, the formation mechanism, or shape of rock glaciers. The state of rock glacier activity predicts differences in elevations of toes to 140 m at best so that regional inference of the distribution of discontinuous permafrost from rock-glacier toes cannot be more accurate than this in the Argentinian Andes. We conclude that the Central Andes-where rock glaciers are largest, cover the most area, and have a greater density than glaciers-is likely to experience the most widespread disturbance to the thermal regime of the twenty-first century. (C) 2018 Elsevier B.V. All rights reserved. KW - rock glacier KW - Argentina KW - permafrost KW - climate change Y1 - 2018 U6 - https://doi.org/10.1016/j.geomorph.2018.09.005 SN - 0169-555X SN - 1872-695X VL - 323 SP - 13 EP - 24 PB - Elsevier CY - Amsterdam ER - TY - THES A1 - Strauß, Jens T1 - Organic carbon in ice-rich permafrost T1 - Organischer Kohlenstoff in eisreichen Permafrostablagerungen BT - characteristics, quantity, and availability BT - stoffliche Charakteristik, Bilanzierung und Verfügbarkeit N2 - Permafrost, defined as ground that is frozen for at least two consecutive years, is a distinct feature of the terrestrial unglaciated Arctic. It covers approximately one quarter of the land area of the Northern Hemisphere (23,000,000 km²). Arctic landscapes, especially those underlain by permafrost, are threatened by climate warming and may degrade in different ways, including active layer deepening, thermal erosion, and development of rapid thaw features. In Siberian and Alaskan late Pleistocene ice-rich Yedoma permafrost, rapid and deep thaw processes (called thermokarst) can mobilize deep organic carbon (below 3 m depth) by surface subsidence due to loss of ground ice. Increased permafrost thaw could cause a feedback loop of global significance if its stored frozen organic carbon is reintroduced into the active carbon cycle as greenhouse gases, which accelerate warming and inducing more permafrost thaw and carbon release. To assess this concern, the major objective of the thesis was to enhance the understanding of the origin of Yedoma as well as to assess the associated organic carbon pool size and carbon quality (concerning degradability). The key research questions were: - How did Yedoma deposits accumulate? - How much organic carbon is stored in the Yedoma region? - What is the susceptibility of the Yedoma region's carbon for future decomposition? To address these three research questions, an interdisciplinary approach, including detailed field studies and sampling in Siberia and Alaska as well as methods of sedimentology, organic biogeochemistry, remote sensing, statistical analyses, and computational modeling were applied. To provide a panarctic context, this thesis additionally includes results both from a newly compiled northern circumpolar carbon database and from a model assessment of carbon fluxes in a warming Arctic. The Yedoma samples show a homogeneous grain-size composition. All samples were poorly sorted with a multi-modal grain-size distribution, indicating various (re-) transport processes. This contradicts the popular pure loess deposition hypothesis for the origin of Yedoma permafrost. The absence of large-scale grinding processes via glaciers and ice sheets in northeast Siberian lowlands, processes which are necessary to create loess as material source, suggests the polygenetic origin of Yedoma deposits. Based on the largest available data set of the key parameters, including organic carbon content, bulk density, ground ice content, and deposit volume (thickness and coverage) from Siberian and Alaskan study sites, this thesis further shows that deep frozen organic carbon in the Yedoma region consists of two distinct major reservoirs, Yedoma deposits and thermokarst deposits (formed in thaw-lake basins). Yedoma deposits contain ~80 Gt and thermokarst deposits ~130 Gt organic carbon, or a total of ~210 Gt. Depending on the approach used for calculating uncertainty, the range for the total Yedoma region carbon store is ±75 % and ±20 % for conservative single and multiple bootstrapping calculations, respectively. Despite the fact that these findings reduce the Yedoma region carbon pool by nearly a factor of two compared to previous estimates, this frozen organic carbon is still capable of inducing a permafrost carbon feedback to climate warming. The complete northern circumpolar permafrost region contains between 1100 and 1500 Gt organic carbon, of which ~60 % is perennially frozen and decoupled from the short-term carbon cycle. When thawed and reintroduced into the active carbon cycle, the organic matter qualities become relevant. Furthermore, results from investigations into Yedoma and thermokarst organic matter quality studies showed that Yedoma and thermokarst organic matter exhibit no depth-dependent quality trend. This is evidence that after freezing, the ancient organic matter is preserved in a state of constant quality. The applied alkane and fatty-acid-based biomarker proxies including the carbon-preference and the higher-land-plant-fatty-acid indices show a broad range of organic matter quality and thus no significantly different qualities of the organic matter stored in thermokarst deposits compared to Yedoma deposits. This lack of quality differences shows that the organic matter biodegradability depends on different decomposition trajectories and the previous decomposition/incorporation history. Finally, the fate of the organic matter has been assessed by implementing deep carbon pools and thermokarst processes in a permafrost carbon model. Under various warming scenarios for the northern circumpolar permafrost region, model results show a carbon release from permafrost regions of up to ~140 Gt and ~310 Gt by the years 2100 and 2300, respectively. The additional warming caused by the carbon release from newly-thawed permafrost contributes 0.03 to 0.14°C by the year 2100. The model simulations predict that a further increase by the 23rd century will add 0.4°C to global mean surface air temperatures. In conclusion, Yedoma deposit formation during the late Pleistocene was dominated by water-related (alluvial/fluvial/lacustrine) as well as aeolian processes under periglacial conditions. The circumarctic permafrost region, including the Yedoma region, contains a substantial amount of currently frozen organic carbon. The carbon of the Yedoma region is well-preserved and therefore available for decomposition after thaw. A missing quality-depth trend shows that permafrost preserves the quality of ancient organic matter. When the organic matter is mobilized by deep degradation processes, the northern permafrost region may add up to 0.4°C to the global warming by the year 2300. N2 - Permafrost, definiert als mehr als zwei aufeinander folgende Jahre gefrorenes Bodenmaterial, ist eines der prägenden Merkmale der unvergletscherten arktischen Landgebiete. Verursacht durch extrem kalte Wintertemperaturen und geringe Schneebedeckung nimmt das Permafrost-Verbreitungsgebiet mit ~23.000.000 km² rund ein Viertel der Landfläche der Nordhemisphäre ein. Von Permafrost unterlagerte arktische Landschaften sind besonders anfällig hinsichtlich einer Erwärmung des Klimas. Verglichen mit der globalen Mitteltemperatur prognostizieren Klimamodelle für die Arktis einen doppelt so starken Anstieg der Temperatur. In einer sich erwärmenden Arktis bewirken Störungen des thermisch-hydrologischen Gleichgewichts eine Degradation von Permafrost und Veränderungen des Oberflächenreliefs. Diese Störungen können zum Beispiel zu einer Vertiefung der saisonalen Auftauschicht, zu thermisch bedingter Erosion sowie zu schneller Oberflächenabsenkung und Thermokarst führen. Im Verbreitungsgebiet der spätpleistozänen eisreichen Permafrost-Ablagerungen Sibiriens und Alaskas, bezeichnet als Yedoma, können Thermokarstprozesse auch mehr als 3 m tiefe organischen Kohlenstoffspeicher verfügbar machen, wenn durch schmelzendes Grundeis und Schmelzwasserdrainage die Oberfläche abgesenkt wird. So kann das Tauen von Permafrost eine globale Bedeutung entwickeln, indem vorher eingefrorener Kohlenstoff wieder dem aktiven Kohlenstoffkreislauf zugeführt wird. Dies kann durch Treibhausgasfreisetzung aus Permafrost zu einer sich selbst verstärkenden weiteren Erwärmung und somit zu fortschreitendem Tauen mit weiterer Kohlenstofffreisetzung führen. Diesen Prozess nennt man Permafrost-Kohlenstoff Rückkopplung. Um das Verständnis der Permafrostkohlenstoffdynamik grundlegend zu verbessern, wurde in dieser Doktorarbeit die Entstehung der Yedoma-Ablagerungen eingeschlossen des darin - Wie wurden die Yedoma-Sedimente abgelagert? - Wie viel Kohlenstoff ist in der Yedoma Region gespeichert? - Wie ist die Anfälligkeit dieses Kohlenstoffs für eine Degradation in der Zukunft? Um die oben genannten drei Forschungsfragen zu beantworten, wurde ein interdisziplinärer Forschungsansatz gewählt. In Sibirien und Alaska wurden detaillierte Felduntersuchungen durchgeführt und Methoden der Sedimentologie, der organischen Biogeochemie, der Fernerkundung sowie der statistischen Analyse und computergestützten Modellierung angewendet. Um diese Ergebnisse in den panarktische Kontext zu setzen, enthält diese Doktorarbeit ebenfalls Ergebnisse einer Studie, welche auf Grundlage einer neu zusammengestellten Datenbank den gesamten Kohlenstoff des arktischen Permafrosts abschätzt. Eine Modellierungsstudie ergänzt die Arbeit bezüglich einer Abschätzung der Kohlenstoffflüsse der Permafrostregion und deren Einfluss auf die globale Erwärmung. Die Ergebnisse zur Yedoma-Entstehung zeigen, dass die Korngrößenverteilungen dieser Ablagerungen, tiefenabhängig betrachtet, sehr homogen sind. Alle gemessenen Korngrößenverteilungen sind schlecht sortiert. Dies deutet auf eine Vielzahl von Transportprozessen hin und widerspricht der populären Hypothese einer reinen Löß-Ablagerung. Interpretiert im Kontext mit der Abwesenheit von Gletschern sowie Eisschilden, als Ausgangsgebiete von Löß-Ablagerungen, in den sibirischen Tiefländern des Spätpleistozäns, zeigt diese Arbeit, dass Yedoma-Ablagerungen polygenetischen Ursprungs sind. Basierend auf dem größten verfügbaren Datensatz der Schlüsselparameter Kohlenstoffgehalt, Lagerungsdichte, Grundeis und Volumen der Ablagerungen von über 20 Untersuchungsgebieten in Sibirien und Alaska zeigt diese Arbeit mit Yedoma- und Thermokarstablagerungen zwei wesentliche Kohlenstoffspeicher der Yedoma Region auf. Yedoma-Ablagerungen enthalten ~80 Gt und Thermokarstablagerungen ~130 Gt organischen Kohlenstoffs, was einer Gesamtmenge von ~210 Gt organischen Kohlenstoffs entspricht. Abhängig vom gewählten Ansatz der Fehlerberechnung liegt der Unsicherheitsbereich dieser Quantitätsabschätzung bei ±75 % (einfaches Bootstrapping) oder ±20 % (wiederholtes Bootstrapping). Obwohl diese Zahlen die bisherigen Berechnungen des Yedoma-Region-Kohlenstoffspeichers vorhergehender Studien halbieren, stellen 210 Gt organischen Kohlenstoffs noch immer einen großen Kohlenstoffspeicher dar, der eine positive Rückkopplung zur globalen Klimaerwärmung bewirken könnte. Die gesamte Permafrostregion beinhaltet zwischen 1100 und 1500 Gt Kohlenstoff, wovon ~60 % dauerhaft gefroren und somit dem derzeitigen Kohlenstoffkreislauf entzogen sind. Wenn dieser Kohlenstoff freigesetzt wird, ist ein weiterer Faktor, die Kohlenstoffqualität, relevant. Die Untersuchungen zur Kohlenstoffqualität zeigen keinen tiefenabhängigen Trend in Yedoma- und Thermokarstablagerungen. Dies belegt, dass nach dem Einfrieren die fossile organische Substanz konserviert wurde. Die genutzten Biomarkerdaten, z.B. der 'carbon preference' Index und der 'higher land plant fatty acid' Index zeigen sowohl für Yedoma- als auch für Thermokarstablagerungen keine signifikanten Unterschiede der Kohlenstoffqualität. Das bedeutet, dass der Kohlenstoffabbau nach dem Auftauen von unterschiedlichen Faktoren abhängig ist. Dazu gehören verschiedene Abbauwege oder schon vor dem Einfrieren geschehener Abbau. Um die Bedeutung des aufgetauten Kohlenstoffs abzuschätzen, wurden Thermokarstprozesse in ein Permafrost-Kohlenstoff-Modell einbezogen. Unter Berücksichtigung verschiedener Erwärmungsszenarien könnte die zirkumarktische Permafrostregion bis zum Jahr 2100 ~140 Gt Kohlenstoff und bis 2300 ~310 Gt in die Atmosphäre freisetzen. Dies entspricht einer Erwärmung der mittleren globalen Oberflächentemperatur von ~0,03 bis ~0,14°C bis 2100 und bis zu ~0,4°C bis 2300. Zusammenfassend stellt diese Dissertation heraus, dass die Yedoma-Ablagerungen während des Spätpleistozäns durch eine Kombination verschiedener aquatischer (alluviale, fluviale, lakustrine) sowie äolische Prozesse entstanden sind. Die zirkumarktische Region, inklusive der Yedoma Region, beinhaltet eine erhebliche Menge an derzeit eingefrorenem organischen Kohlenstoffs. Dieser Kohlenstoff ist gut erhalten und damit nach dem Auftauen für den mikrobiellen Abbau verfügbar. Eine fehlende Tiefenabhängigkeit der Kohlenstoffqualität zeigt, dass Permafrost die Qualität zum Einfrierzeitpunkt bewahrt. Wenn auch der tiefliegende organische Kohlenstoff durch Thermokarstprozesse verfügbar gemacht wird, kann die Permafrostregion bis zum Jahr 2300 bis zu 0,4°C zur mittleren globalen Oberflächentemperatur beitragen. KW - permafrost KW - Arctic KW - climate change KW - vulnerability KW - Dauerfrostboden KW - Arktis KW - Klimawandel KW - Vulnerabilität Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-75236 ER -