TY - JOUR A1 - Andermann, Christoff A1 - Crave, Alain A1 - Gloaguen, Richard A1 - Davy, Philippe A1 - Bonnet, Stephane T1 - Connecting source and transport: Suspended sediments in the Nepal Himalayas JF - Earth & planetary science letters N2 - Understanding the dynamics of sediment fluxes is a key issue to constrain modern erosion rates in mountain belts and determine the still debated level of control exerted by precipitation, topography and tectonics. The well defined monsoon seasonality in the Himalayas, together with active tectonics and strong relief provide an ideal environment to assess these possible interactions. For this purpose, we present a new compilation of daily suspended sediment data for 12 stations of the major rivers of the Nepal Himalayas. We analyze the relationships of sediment transport with daily river discharge and precipitation data as well as with morphometric parameters. We show that suspended sediment concentrations vary systematically through the seasons and asynchronously to river discharge displaying a hysteresis effect. This clockwise hysteresis effect disappears when suspended sediment fluxes are directly compared with direct storm discharge. Therefore we attribute the hysteresis effect to groundwater dilution rather than a sediment supply limitation. We infer a rating model to calculate erosion rates directly from long river discharge chronicles. We show that, when normalized by drainage area and mean sediment flux, all rivers exhibit the same trend. This similarity implies that all river basins have the same erosion behavior, independent of location, size and catchment characteristics. Erosion rates calculated from suspended sediment fluxes range between 0.1 and 2.8 mm/yr. The erosion rates of the three main basins of Nepal are in the range 0.9-1.5 mm/yr. Erosion rates in the Higher Himalayas are relatively low ( <0.5 mm/yr, except for Kali Gandaki), while in the Lesser Himalayas they range from 0.2 to 2 mm/yr. We propose that material transport in the rivers depends on hillslope sediment supply, which is, in turn, controlled by those rainfalls producing direct runoff. In other words, the rivers in the Nepal Himalayas are supply-limited and the hillsopes as a contributing source are transport-limited. We also show that erosion processes are not as much controlled by infrequently occurring extreme precipitation events, than by moderate ones with a high recurrence interval. KW - suspended sediment transport KW - Himalayas KW - erosion KW - sediment flux hysteresis KW - monsoon river hydrology KW - Himalayan rivers Y1 - 2012 U6 - https://doi.org/10.1016/j.epsl.2012.06.059 SN - 0012-821X VL - 351 SP - 158 EP - 170 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Ballato, Paolo A1 - Landgraf, Angela A1 - Schildgen, Taylor F. A1 - Stockli, Daniel F. A1 - Fox, Matthew A1 - Ghassemi, Mohammad R. A1 - Kirby, Eric A1 - Strecker, Manfred T1 - The growth of a mountain belt forced by base-level fall: Tectonics and surface processes during the evolution of the Alborz Mountains, N Iran JF - Earth & planetary science letters N2 - The idea that climatically modulated erosion may impact orogenic processes has challenged geoscientists for decades. Although modeling studies and physical calculations have provided a solid theoretical basis supporting this interaction, to date, field-based work has produced inconclusive results. The central-western Alborz Mountains in the northern sectors of the Arabia-Eurasia collision zone constitute a promising area to explore these potential feedbacks. This region is characterized by asymmetric precipitation superimposed on an orogen with a history of spatiotemporal changes in exhumation rates, deformation patterns, and prolonged, km-scale base-level changes. Our analysis suggests that despite the existence of a strong climatic gradient at least since 17.5 Ma, the early orogenic evolution (from similar to 36 to 9-6 Ma) was characterized by decoupled orographic precipitation and tectonics. In particular, faster exhumation and sedimentation along the more arid southern orogenic flank point to a north-directed accretionary flux and underthrusting of Central Iran. Conversely, from 6 to 3 Ma, erosion rates along the northern orogenic flank became higher than those in the south, where they dropped to minimum values. This change occurred during a similar to 3-Myr-long, km-scale base-level lowering event in the Caspian Sea. We speculate that mass redistribution processes along the northern flank of the Alborz and presumably across all mountain belts adjacent to the South Caspian Basin and more stable areas of the Eurasian plate increased the sediment load in the basin and ultimately led to the underthrusting of the Caspian Basin beneath the Alborz Mountains. This underthrusting in turn triggered a new phase of northward orogenic expansion, transformed the wetter northern flank into a new pro-wedge, and led to the establishment of apparent steady-state conditions along the northern orogenic flank (i.e., rock uplift equal to erosion rates). Conversely, the southern mountain front became the retro-wedge and experienced limited tectonic activity. These observations overall raise the possibility that mass-distribution processes during a pronounced erosion phase driven by base-level changes may have contributed to the inferred regional plate-tectonic reorganization of the northern Arabia-Eurasia collision during the last similar to 5 Ma. (C) 2015 Elsevier B.V. All rights reserved. KW - orogenic processes KW - surface processes KW - base-level fall KW - erosion KW - rock uplift KW - knickpoints Y1 - 2015 U6 - https://doi.org/10.1016/j.epsl.2015.05.051 SN - 0012-821X SN - 1385-013X VL - 425 SP - 204 EP - 218 PB - Elsevier CY - Amsterdam ER - TY - THES A1 - Behrens, Ricarda T1 - Causes for slow weathering and erosion in the steep, warm, monsoon-subjected Highlands of Sri Lanka T1 - Ursache von langsamer Verwitterung und Erosion im steilen, warmen und Monsun-beeinflussten Hochland von Sri Lanka N2 - In the Highlands of Sri Lanka, erosion and chemical weathering rates are among the lowest for global mountain denudation. In this tropical humid setting, highly weathered deep saprolite profiles have developed from high-grade metamorphic charnockite during spheroidal weathering of the bedrock. The spheroidal weathering produces rounded corestones and spalled rindlets at the rock-saprolite interface. I used detailed textural, mineralogical, chemical, and electron-microscopic (SEM, FIB, TEM) analyses to identify the factors limiting the rate of weathering front advance in the profile, the sequence of weathering reactions, and the underlying mechanisms. The first mineral attacked by weathering was found to be pyroxene initiated by in situ Fe oxidation, followed by in situ biotite oxidation. Bulk dissolution of the primary minerals is best described with a dissolution – re-precipitation process, as no chemical gradients towards the mineral surface and sharp structural boundaries are observed at the nm scale. Only the local oxidation in pyroxene and biotite is better described with an ion by ion process. The first secondary phases are oxides and amorphous precipitates from which secondary minerals (mainly smectite and kaolinite) form. Only for biotite direct solid state transformation to kaolinite is likely. The initial oxidation of pyroxene and biotite takes place in locally restricted areas and is relatively fast: log J = -11 molmin/(m2 s). However, calculated corestone-scale mineral oxidation rates are comparable to corestone-scale mineral dissolution rates: log R = -13 molpx/(m2 s) and log R = -15 molbt/(m2 s). The oxidation reaction results in a volume increase. Volumetric calculations suggest that this observed oxidation leads to the generation of porosity due to the formation of micro-fractures in the minerals and the bedrock allowing for fluid transport and subsequent dissolution of plagioclase. At the scale of the corestone, this fracture reaction is responsible for the larger fractures that lead to spheroidal weathering and to the formation of rindlets. Since these fractures have their origin from the initial oxidational induced volume increase, oxidation is the rate limiting parameter for weathering to take place. The ensuing plagioclase weathering leads to formation of high secondary porosity in the corestone over a distance of only a few cm and eventually to the final disaggregation of bedrock to saprolite. As oxidation is the first weathering reaction, the supply of O2 is a rate-limiting factor for chemical weathering. Hence, the supply of O2 and its consumption at depth connects processes at the weathering front with erosion at the surface in a feedback mechanism. The strength of the feedback depends on the relative weight of advective versus diffusive transport of O2 through the weathering profile. The feedback will be stronger with dominating diffusive transport. The low weathering rate ultimately depends on the transport of O2 through the whole regolith, and on lithological factors such as low bedrock porosity and the amount of Fe-bearing primary minerals. In this regard the low-porosity charnockite with its low content of Fe(II) bearing minerals impedes fast weathering reactions. Fresh weatherable surfaces are a pre-requisite for chemical weathering. However, in the case of the charnockite found in the Sri Lankan Highlands, the only process that generates these surfaces is the fracturing induced by oxidation. Tectonic quiescence in this region and low pre-anthropogenic erosion rate (attributed to a dense vegetation cover) minimize the rejuvenation of the thick and cohesive regolith column, and lowers weathering through the feedback with erosion. N2 - Erosions- und chemische Verwitterungsraten im srilankischen Hochland gehören zu den langsamsten der globalen Gebirgsdenudationsraten. In diesem tropischen, humiden Gebiet entwickelten sich mächtige Verwitterungsprofile – sogenannte Saprolite – auf spheroidal verwittertem, hochgradig metamorphen Charnockit. Spheroidale Verwitterung führt zu abgerundeten „corestones“ mit abgesplitterten Rinden („rindlets“) an der Gesteins – Saprolit Grenze. Zur Identifizierung der ratenlimitierenden Faktoren des Fortschreiten der Verwitterungsfront, der Sequenz der Verwitterungsreaktionen und der dahinterliegenden Mechanismen nutzte ich detaillierte gesteinsstrukturelle, mineralogische, chemische und elektronenmikroskopische (SEM, FIB, TEM) Analysemethoden. Die initiale Verwitterung beginnt mit lokal begrenzter in situ Oxidation in Pyroxen, gefolgt von in situ Oxidation von Biotit. Die Auflösung der Minerale wird am besten durch einen Auflöse – Wiederausfällungs-prozess beschrieben, da zur Mineralgrenze hin keine chemischen Gradienten, dafür aber auf der nm-Skala scharfe strukturelle Grenzen zu beobachten sind. Die ersten ausfallenden Sekundärphasen sind Oxide und amorphe Phasen aus denen sich Sekundärmineral (hauptsächlich Smectit und Kaolinit) bilden. Für Biotit ist auch eine direkte Umwandlung im Festzustand zu Kaolinit möglich. Die initiale Pyroxen- und Biotitoxidation ist relativ schnell: log J = -11 molmin/(m2 s). Berechnete Oxidationsraten auf der corestone-Skala (cm) sind vergleichbar zu Auflöseraten auf derselben Skala: log R = -13 molpx/(m2 s) und log R = -15 molbt/(m2 s). Volumetrische Berechnungen führen zum Schluss, dass die Oxidation mit einhergehender Volumenzunahme zur Entwicklung von Mikrofrakturen in den Mineralen und dem Gesamtgestein führt. Diese begünstigen Fluidtransport und damit einhergehende Plagioklasverwitterung. Des Weiteren ist diese Oxidationsreaktion verantwortlich für die Entstehung der Frakturen bei spheroidaler Verwitterung des Gesteins, welche die „rindlets“ vom „corestone“ abgrenzen. Daraus kann geschlossen werden, dass in situ Oxidation der ratenlimitierende Prozess bei der Verwitterung ist. Plagioklasverwitterung führt zu einer hohen Porositätszunahme und der endgültigen Umwandlung von Gestein zu Saprolit. Da Oxidation die erste Verwitterungsreaktion ist, verbinden die Zuführung und der Verbrauch von O2 zur, beziehungsweise an die Verwitterungsfront Erosion an der Oberfläche mit Prozessen an der Verwitterungsfront über einen Feedbackmechanismus. Daher hängt die langsame Verwitterungsrate letztlich vom Sauerstofftransport durch das Verwitterungsprofil und von lithologischen Faktoren des Charnockit wie zum Beispiel geringe Gesteinsporosität und/oder wenige Fe(II)-haltige Primärminerale ab. Des Weiteren ist der einzige Prozess im Charnockit der frische verwitterbare Oberflächen (eine Voraussetzung für chemische Verwitterung) generiert die oxidations-induzierte Frakturierung. Darüber hinaus minimieren die Abwesenheit von tektonischer Aktivität und geringe prä-anthropogene Erosionsraten in dieser Region den Abtrag des mächtigen und kohäsiven Verwitterungsprofils und somit über den beschriebenen Feedback auch die chemische Verwitterungsrate. KW - Sri Lanka KW - chemical weathering KW - erosion KW - saprolite KW - weathering feedback KW - charnockite KW - critical zone KW - mineral weathering reactions KW - Sri Lanka KW - chemische Verwitterung KW - Erosion KW - Saprolit KW - Verwitterungsfeedback KW - Charnockit KW - kritische Zone KW - Mineralverwitterungsreaktionen Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-408503 ER - TY - JOUR A1 - Bookhagen, Bodo A1 - Strecker, Manfred T1 - Spatiotemporal trends in erosion rates across a pronounced rainfall gradient: Examples from the southern Central Andes JF - Earth & planetary science letters N2 - The tectonic and climatic boundary conditions of the broken foreland and the orogen interior of the southern Central Andes of northwestern Argentina cause strong contrasts in elevation, rainfall, and surface-process regimes. The climatic gradient in this region ranges from the wet, windward eastern flanks (similar to 2 m/yr rainfall) to progressively drier western basins and ranges (similar to 0.1 m/yr) bordering the arid Altiplano-Puna Plateau. In this study, we analyze the impact of spatiotemporal climatic gradients on surface erosion: First, we present 41 new catchment-mean erosion rates derived from cosmogenic nuclide inventories to document spatial erosion patterns. Second, we re-evaluate paleoclimatic records from the Calchaquies basin (66 W, 26 S), a large intermontane basin bordered by high (> 4.5 km) mountain ranges, to demonstrate temporal variations in erosion rates associated with changing climatic boundary conditions during the late Pleistocene and Holocene. Three key observations in this region emphasize the importance of climatic parameters on the efficiency of surface processes in space and time: (1) First-order spatial patterns of erosion rates can be explained by a simple specific stream power (SSP) approach. We explicitly account for discharge by routing high-resolution, satellite derived rainfall. This is important as the steep climatic gradient results in a highly non-linear relation between drainage area and discharge. This relation indicates that erosion rates (ER) scale with ER similar to SSP1.4 on cosmogenic-nuclide time scales. (2) We identify an intrinsic channel-slope behavior in different climatic compartments. Channel slopes in dry areas (< 0.25 m/yr rainfall) are slightly steeper than in wet areas (> 0.75 m/yr) with equal drainage areas, thus compensating lower amounts of discharge with steeper slopes. (3) Erosion rates can vary by an order of magnitude between presently dry (similar to 0.05 mm/yr) and well-defined late Pleistocene humid (similar to 0.5 mm/yr) conditions within an intemontane basin. Overall, we document a strong climatic impact on erosion rates and channel slopes. We suggest that rainfall reaching areas with steeper channel slopes in the orogen interior during wetter climate periods results in intensified sediment mass transport, which is primarily responsible for maintaining the balance between surface uplift, erosion, sediment routing and transient storage in the orogen. KW - erosion KW - landscape evolution KW - specific stream power KW - cosmogenic radionuclides KW - paleoclimate KW - climate-tectonic feedback processes Y1 - 2012 U6 - https://doi.org/10.1016/j.epsl.2012.02.005 SN - 0012-821X VL - 327 IS - 8 SP - 97 EP - 110 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Forte, Adam M. A1 - Whipple, Kelin X. A1 - Bookhagen, Bodo A1 - Rossi, Matthew W. T1 - Decoupling of modern shortening rates, climate, and topography in the Caucasus JF - Earth & planetary science letters N2 - The Greater and Lesser Caucasus mountains and their associated foreland basins contain similar rock types, experience a similar two-fold, along-strike variation in mean annual precipitation, and were affected by extreme base-level drops of the neighboring Caspian Sea. However, the two Caucasus ranges are characterized by decidedly different tectonic regimes and rates of deformation that are subject to moderate (less than an order of magnitude) gradients in climate, and thus allow for a unique opportunity to isolate the effects of climate and tectonics in the evolution of topography within active orogens. There is an apparent disconnect between modern climate, shortening rates, and topography of both the Greater Caucasus and Lesser Caucasus which exhibit remarkably similar topography along-strike despite the gradients in forcing. By combining multiple datasets, we examine plausible causes for this disconnect by presenting a detailed analysis of the topography of both ranges utilizing established relationships between catchment-mean erosion rates and topography (local relief, hillslope gradients, and channel steepness) and combining it with a synthesis of previously published low-temperature thermochronologic data. Modern climate of the Caucasus region is assessed through an analysis of remotely-sensed data (TRMM and MODIS) and historical streamflow data. Because along-strike variation in either erosional efficiency or thickness of accreted material fail to explain our observations, we suggest that the topography of both the western Lesser and Greater Caucasus are partially supported by different geodynamic forces. In the western Lesser Caucasus, high relief portions of the landscape likely reflect uplift related to ongoing mantle lithosphere delamination beneath the neighboring East Anatolian Plateau. In the Greater Caucasus, maintenance of high topography in the western portion of the range despite extremely low (<2-4 mm/y) modern convergence rates may be related to dynamic topography from detachment of the north-directed Greater Caucasus slab or to a recent slowing of convergence rates. Large-scale spatial gradients in climate are not reflected in the topography of the Caucasus and do not seem to exert any significant control on the tectonics or structure of either range. (C) 2016 Elsevier B.V. All rights reserved. KW - tectonics KW - erosion KW - climate KW - dynamic topography KW - orogenic processes Y1 - 2016 U6 - https://doi.org/10.1016/j.epsl.2016.06.013 SN - 0012-821X SN - 1385-013X VL - 449 SP - 282 EP - 294 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Garcin, Yannick A1 - Schildgen, Taylor F. A1 - Acosta, Veronica Torres A1 - Melnick, Daniel A1 - Guillemoteau, Julien A1 - Willenbring, Jane A1 - Strecker, Manfred T1 - Short-lived increase in erosion during the African Humid Period BT - evidence from the northern Kenya Rift JF - Earth & planetary science letters N2 - The African Humid Period (AHP) between similar to 15 and 5.5 cal. kyr BP caused major environmental change in East Africa, including filling of the Suguta Valley in the northern Kenya Rift with an extensive (similar to 2150 km(2)), deep (similar to 300 m) lake. Interfingering fluvio-lacustrine deposits of the Baragoi paleo-delta provide insights into the lake-level history and how erosion rates changed during this time, as revealed by delta-volume estimates and the concentration of cosmogenic Be-10 in fluvial sand. Erosion rates derived from delta-volume estimates range from 0.019 to 0.03 mm yr(-1). Be-10-derived paleo-erosion rates at similar to 11.8 cal. kyr BP ranged from 0.035 to 0.086 mm yr(-1), and were 2.7 to 6.6 times faster than at present. In contrast, at similar to 8.7 cal. kyr BP, erosion rates were only 1.8 times faster than at present. Because Be-10-derived erosion rates integrate over several millennia; we modeled the erosion-rate history that best explains the 10Be data using established non-linear equations that describe in situ cosmogenic isotope production and decay. Two models with different temporal constraints (15-6.7 and 12-6.7 kyr) suggest erosion rates that were 25 to 300 times higher than the initial erosion rate (pre-delta formation). That pulse of high erosion rates was short (similar to 4 kyr or less) and must have been followed by a rapid decrease in rates while climate remained humid to reach the modern Be-10-based erosion rate of,similar to 0.013 mm yr(-1). Our simulations also flag the two highest Be-10-derived erosion rates at 11.8 kyr BP related to nonuniform catchment erosion. These changes in erosion rates and processes during the AHP may reflect a strong increase in precipitation, runoff, and erosivity at the arid-to-humid transition either at 15 or similar to 12 cal. kyr BP, before the landscape stabilized again, possibly due to increased soil production and denser vegetation. KW - northern Kenya Rift KW - Baragoi KW - paleo-delta KW - African Humid Period KW - erosion KW - Be-10 Y1 - 2017 U6 - https://doi.org/10.1016/j.epsl.2016.11.017 SN - 0012-821X SN - 1385-013X VL - 459 SP - 58 EP - 69 PB - Elsevier CY - Amsterdam ER - TY - THES A1 - Hoffmann, Bernd T1 - Plant organic matter mobilization and export in fluvial systems T1 - Mobilisierung und Export pflanzlicher Biomasse in Flusssystemen BT - a case study from the eastern Nepalese Arun Valley BT - Fallstudie im ost-nepalesischen Arun-Tal N2 - The global carbon cycle is closely linked to Earth’s climate. In the context of continuously unchecked anthropogenic CO₂ emissions, the importance of natural CO₂ bond and carbon storage is increasing. An important biogenic mechanism of natural atmospheric CO₂ drawdown is the photosynthetic carbon fixation in plants and the subsequent longterm deposition of plant detritus in sediments. The main objective of this thesis is to identify factors that control mobilization and transport of plant organic matter (pOM) through rivers towards sedimentation basins. I investigated this aspect in the eastern Nepalese Arun Valley. The trans-Himalayan Arun River is characterized by a strong elevation gradient (205 − 8848 m asl) that is accompanied by strong changes in ecology and climate ranging from wet tropical conditions in the Himalayan forelad to high alpine tundra on the Tibetan Plateau. Therefore, the Arun is an excellent natural laboratory, allowing the investigation of the effect of vegetation cover, climate, and topography on plant organic matter mobilization and export in tributaries along the gradient. Based on hydrogen isotope measurements of plant waxes sampled along the Arun River and its tributaries, I first developed a model that allows for an indirect quantification of pOM contributed to the mainsetm by the Arun’s tributaries. In order to determine the role of climatic and topographic parameters of sampled tributary catchments, I looked for significant statistical relations between the amount of tributary pOM export and tributary characteristics (e.g. catchment size, plant cover, annual precipitation or runoff, topographic measures). On one hand, I demonstrated that pOMsourced from the Arun is not uniformly derived from its entire catchment area. On the other, I showed that dense vegetation is a necessary, but not sufficient, criterion for high tributary pOM export. Instead, I identified erosion and rainfall and runoff as key factors controlling pOM sourcing in the Arun Valley. This finding is supported by terrestrial cosmogenic nuclide concentrations measured on river sands along the Arun and its tributaries in order to quantify catchment wide denudation rates. Highest denudation rates corresponded well with maximum pOM mobilization and export also suggesting the link between erosion and pOM sourcing. The second part of this thesis focusses on the applicability of stable isotope records such as plant wax n-alkanes in sediment archives as qualitative and quantitative proxy for the variability of past Indian Summer Monsoon (ISM) strength. First, I determined how ISM strength affects the hydrogen and oxygen stable isotopic composition (reported as δD and δ18O values vs. Vienna Standard Mean Ocean Water) of precipitation in the Arun Valley and if this amount effect (Dansgaard, 1964) is strong enough to be recorded in potential paleo-ISM isotope proxies. Second, I investigated if potential isotope records across the Arun catchment reflect ISM strength dependent precipitation δD values only, or if the ISM isotope signal is superimposed by winter precipitation or glacial melt. Furthermore, I tested if δD values of plant waxes in fluvial deposits reflect δD values of environmental waters in the respective catchments. I showed that surface water δD values in the Arun Valley and precipitation δD from south of the Himalaya both changed similarly during two consecutive years (2011 & 2012) with distinct ISM rainfall amounts (~20% less in 2012). In order to evaluate the effect of other water sources (Winter-Westerly precipitation, glacial melt) and evapotranspiration in the Arun Valley, I analysed satellite remote sensing data of rainfall distribution (TRMM 3B42V7), snow cover (MODIS MOD10C1), glacial coverage (GLIMSdatabase, Global Land Ice Measurements from Space), and evapotranspiration (MODIS MOD16A2). In addition to the predominant ISM in the entire catchment I found through stable isotope analysis of surface waters indications for a considerable amount of glacial melt derived from high altitude tributaries and the Tibetan Plateau. Remotely sensed snow cover data revealed that the upper portion of the Arun also receives considerable winter precipitation, but the effect of snow melt on the Arun Valley hydrology could not be evaluated as it takes place in early summer, several months prior to our sampling campaigns. However, I infer that plant wax records and other potential stable isotope proxy archives below the snowline are well-suited for qualitative, and potentially quantitative, reconstructions of past changes of ISM strength. N2 - Da der globale Kohlenstoffkreislauf stark mit dem Klima der Erde verknüpft ist, sind im Zusammenhang mit dem weiterhin ungebremsten anthropogenen CO₂-Ausstoß die natürliche Bindung von CO₂ und die langfristige Speicherung von Kohlenstoff um so wichtiger. Einer der wesentlichen Mechanismen des natürlichen CO₂-Abbaus ist die photosynthetische Kohlenstoffbindung in Pflanzen verknüpft mit der anschließenden langfristigen Ablagerung von Pflanzenmaterial in Sedimenten. Hauptziel der vorliegenden Dissertation ist daher, jene Faktoren zu identifizieren, die für den Abtransport toten Pflanzenmaterials in Flüssen hin zu Sedimentationsräumen verantwortlich sind. Das entsprechende Untersuchungsgebiet ist das ost-nepalesische Arun Tal. Der Arun durchschneidet den Himalaya von Nord nach Süd und sein Einzugsgebiet ist geprägt vom stärksten Höhengradienten der Erde (8848-205 m ü.N.N.). Entsprechend durchfließt er mehrere Klimazonen von alpiner Tundra auf dem Tibetischen Plateau hin zu subtropischen Bedingungen im Süden Nepals. Wegen dieses starken Gefälles bietet der Arun die Möglichkeit, die Mobilisierung und den Abtransport von Pflanzenmaterial unter sehr unterschiedlichen klimatischen, ökologischen und topographischen Gegenbenheiten zu untersuchen. Zunächst entwickelte ich ein auf Wasserstoff-Isotopen-Messungen an Pflanzenwachsen in Flusssedimenten basierendes Modell, das es ermöglicht, indirekt den Pflanzendetritus-Beitrag der Nebenflüsse in Relation zur Gesamtmasse des vom Arun abtransportierten Pflanzenmaterials zu quantifizieren. Um jene klimatischen und topografischen Eigenschaften der Seitenflüsse zu ermitteln, welche die jeweils exportierte Menge an Pflanzenmaterial kontrollieren, suchte ich im nächsten Schritt nach einem statistischen Zusammenhang zwischen exportierten Pflanzenrestmengen der Nebenflüsse sowie der Größe ihrer Einzugsgebiete, Pflanzenbedeckung, Niederschlagsmenge (bzw. Abfluss), und ihrer Topografie als Maß für Erosionsvermögen. Mit diesen Methoden kann ich einerseits klar belegen, dass das vom Arun transportierte Pflanzenmaterial nicht flächendeckend gleichmäßig aus seinem Einzugsgebiet stammt. Andererseits zeigt sich, dass dichter Pflanzenbewuchs zwar ein notwendiges, jedoch kein hinreichendes Kriterium für hohe Exportraten ist. Meine Untersuchung im Arun Tal führte letztlich zu dem Ergebnis, dass die für die Mobilisierung und den Export von Pflanzenmaterial wesentlichen Faktoren Niederschlagsmenge und Erosion sind, wobei Pflanzenbedeckung zwar vorausgesetzt ist, oft jedoch als Resultat hohen Niederschlags auftritt. Dass Erosion hierbei eine Schlüsselrolle zukommt, legt auch die Analyse von kosmogenen Nuklid-Konzentrationen in Flusssanden zur Bestimmung von Erosionsraten nahe. Ich fand eine sehr gute räumliche Übereinstimmung von hohen Erosionsraten und maximalem Pflanzendetritus-Abtransport, die den Zusammenhang beider Parameter zusätzlich belegt. Der zweite, im Rahmen der beschriebenen Untersuchung näher beleuchtete Aspekt, ist die potentielle Nutzung der Isotopenzusammensetzung von in Sedimenten enthaltenen Pflanzenwachsen als quantitativer Marker für Monsun-Variabilität in der Vergangenheit. Voraussetzung für eine entsprechende Nutzung ist einerseits, dass sich Schwankungen der Monsun-Intensität in der Isotopie des Regenwassers niederschlagen (der sogenannte amount effect, Dansgaard, 1964) und andererseits, dass die Blattwachsproduzierenden Pflanzen Monsun-Wasser aufnehmen und ausschließlich dessen Isotopie in ihre Blattwachse übernehmen. Die erste Voraussetzung konnte ich als gegeben bestätigen, da sich die Isotopenzusammensetzung der Oberflächenwasser im Arun-Tal während zwei aufeinanderfolgender, sehr unterschiedlich starker Monsun-Regenzeiten (2011 & 2012) gleichermaßen änderte, wie es an einer Wetterstation südlich des Himalaya in Bangladesh beobachtet wurde. Zur Überprüfung der zweiten Bedingung wurde zunächst mit Fernerkundungsmethoden die Regenverteilung (TRMM 3B42V7) und Schneebedeckung (MODIS MOD10C1) im Arun-Tal vor und während der Probenkampagnen 2011 und 2012 ausgewertet. Unter Hinzuziehung der stabilen Wasserstoff und Sauerstoff Isotopen-Messungen an Oberflächenwassern konnte der Einfluss verschiedenerWasserquellen (Indischer Sommer-Monsun, Schnee der Winter-Westwinde, Gletscherschmelze) sehr gut beurteilt werden: Ich konnte zeigen, dass der Arun-Fluss stark von Monsun und Eisschmelze beeinflusst wird und dass darum davon auszugehen ist, dass Blattwachse seines Einzugsgebietes nicht nur die Isotopenzusammensetzung des Monsun-Regens repräsentieren. Die Nebenflüsse jedoch, welche südlich des Himalaya-Hauptkammes unterhalb der Schneegrenze liegen, sind klar dominiert von Monsun-Regen. Das bedeutet, dass potentielle stabile Isotopen-Archive in den entsprechenden Einzugsgebieten quantitativ interpretiert werden können und die Variabilität des Sommer-Monsuns in der Vergangenheit dort absolut rekonstruiert werden könnte. KW - Pflanzenwachs KW - stabile Isotope KW - Satelliten-Fernerkundung KW - Erosion KW - plant waxes KW - stable isotopes KW - remote sensing KW - erosion Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-99336 ER - TY - JOUR A1 - Hoffmann, Bernd A1 - Feakins, Sarah J. A1 - Bookhagen, Bodo A1 - Olen, Stephanie M. A1 - Adhikari, Danda P. A1 - Mainali, Janardan A1 - Sachse, Dirk T1 - Climatic and geomorphic drivers of plant organic matter transport in the Arun River, E Nepal JF - Earth & planetary science letters KW - plant wax biomarker KW - leaf wax delta D KW - carbon cycle KW - remote sensing KW - erosion Y1 - 2016 U6 - https://doi.org/10.1016/j.epsl.2016.07.008 SN - 0012-821X SN - 1385-013X VL - 452 SP - 104 EP - 114 PB - Elsevier CY - Amsterdam ER - TY - THES A1 - Marc, Odin T1 - Earthquake-induced landsliding T1 - Erdbeben induzierten Hangrutschungen BT - earthquakes as erosional agents across timescales BT - Erdbeben als Erosions-Agenten über Zeitskalen N2 - Earthquakes deform Earth's surface, building long-lasting topographic features and contributing to landscape and mountain formation. However, seismic waves produced by earthquakes may also destabilize hillslopes, leading to large amounts of soil and bedrock moving downslope. Moreover, static deformation and shaking are suspected to damage the surface bedrock and therefore alter its future properties, affecting hydrological and erosional dynamics. Thus, earthquakes participate both in mountain building and stimulate directly or indirectly their erosion. Moreover, the impact of earthquakes on hillslopes has important implications for the amount of sediment and organic matter delivered to rivers, and ultimately to oceans, during episodic catastrophic seismic crises, the magnitude of life and property losses associated with landsliding, the perturbation and recovery of landscape properties after shaking, and the long term topographic evolution of mountain belts. Several of these aspects have been addressed recently through individual case studies but additional data compilation as well as theoretical or numerical modelling are required to tackle these issues in a more systematic and rigorous manner. This dissertation combines data compilation of earthquake characteristics, landslide mapping, and seismological data interpretation with physically-based modeling in order to address how earthquakes impact on erosional processes and landscape evolution. Over short time scales (10-100 s) and intermediate length scales (10 km), I have attempted to improve our understanding and ability to predict the amount of landslide debris triggered by seismic shaking in epicentral areas. Over long time scales (1-100 ky) and across a mountain belt (100 km) I have modeled the competition between erosional unloading and building of topography associated with earthquakes. Finally, over intermediate time scales (1-10 y) and at the hillslope scale (0.1-1 km) I have collected geomorphological and seismological data that highlight persistent effects of earthquakes on landscape properties and behaviour. First, I compiled a database on earthquakes that produced significant landsliding, including an estimate of the total landslide volume and area, and earthquake characteristics such as seismic moment and source depth. A key issue is the accurate conversion of landslide maps into volume estimates. Therefore I also estimated how amalgamation - when mapping errors lead to the bundling of multiple landslide into a single polygon - affects volume estimates from various earthquake-induced landslide inventories and developed an algorithm to automatically detect this artifact. The database was used to test a physically-based prediction of the total landslide area and volume caused by earthquakes, based on seismological scaling relationships and a statistical description of the landscape properties. The model outperforms empirical fits in accuracy, with 25 out of 40 cases well predicted, and allows interpretation of many outliers in physical terms. Apart from seismological complexities neglected by the model I found that exceptional rock strength properties or antecedent conditions may explain most outliers. Second, I assessed the geomorphic effects of large earthquakes on landscape dynamics by surveying the temporal evolution of precipitation-normalized landslide rate. I found strongly elevated landslide rates following earthquakes that progressively recover over 1 to 4 years, indicating that regolith strength drops and recovers. The relaxation is clearly non-linear for at least one case, and does not seem to correlate with coseismic landslide reactivation, water table level increase or tree root-system recovery. I suggested that shallow bedrock is damaged by the earthquake and then heals on annual timescales. Such variations in ground strength must be translated into shallow subsurface seismic velocities that are increasingly surveyed with ambient seismic noise correlations. With seismic noise autocorrelation I computed the seismic velocity in the epicentral areas of three earthquakes where I constrained a change in landslide rate. We found similar recovery dynamics and timescales, suggesting that seismic noise correlation techniques could be further developed to meaningfully assess ground strength variations for landscape dynamics. These two measurements are also in good agreement with the temporal dynamics of post-seismic surface displacement measured by GPS. This correlation suggests that the surface healing mechanism may be driven by tectonic deformation, and that the surface regolith and fractured bedrock may behave as a granular media that slowly compacts as it is sheared or vibrated. Last, I compared our model of earthquake-induced landsliding with a standard formulation of surface deformation caused by earthquakes to understand which parameters govern the competition between the building and destruction of topography caused by earthquakes. In contrast with previous studies I found that very large (Mw>8) earthquakes always increase the average topography, whereas only intermediate (Mw ~ 7) earthquakes in steep landscapes may reduce topography. Moreover, I illustrated how the net effect of earthquakes varies with depth or landscape steepness implying a complex and ambivalent role through the life of a mountain belt. Further I showed that faults producing a Gutenberg-Richter distribution of earthquake sizes, will limit topography over a larger range of fault sizes than faults producing repeated earthquakes with a characteristic size. N2 - Erdbeben gestalten die Erdoberfläche, sie tragen langfristig zum Aufbau von Topografie sowie zur Landschafts- und Gebirgsbildung bei. Die von Erdbeben erzeugten seismischen Erschütterungen können Gebirge jedoch auch destabilisieren und grosse Mengen an Boden sowie Grundgestein zum Abrutschen bringen und zerrüten. Erdbeben wirken daher sowohl auf die Gebirgsbildung als auch auf ihre Denudation. Ein detailliertes Verständnis der Auswirkungen von Erdbeben auf Hangstabilität ist eine wichtige Voraussetzung um die Zusammenhänge mit anderen Prozesse besser nachzuvollziehen: der kurzfristige Transport von Sedimenten und organischem Material in Flüsse und ihre Ablagerung bis in die Ozeane; der Verlust von Leben und Infrastruktur durch Hangrutschungen verbunden mit episodischen, katastrophalen, seismischen Ereignissen; die Störung und Wiederherstellung von Landschaftseigenschaften nach Erdbeben; sowie die langfristigen topographischen Entwicklung von ganzen Gebirgsketten. Einige dieser Forschungsfragen wurden kürzlich in einzelnen Fallstudien betrachtet aber zusätzliche Datenerfassung, theoretische und numerische Modellierung sind erforderlich, um diese Prozesse detaillierter zu erfassen. In dieser Dissertation werden Daten zu Eigenschaften der Erdbeben sowie aus Hangrutsch kartierungen und die Interpretation seismologischer Daten mit physikalischer Modellierung kombiniert, um die folgende übergreifende Frage zu beantworten: Wie beeinflussen Erdbeben die Erosionsprozesse in der Landschaftsentwicklung? Auf einer kurzen Zeitskala (10-100 s) und einer mittleren räumlichen Skala (10 km), habe ich versucht sowohl unser Prozessverständnis zu vertiefen als auch Vorhersagen über das gesamte Volumen der Rutschungen welche durch seismische Beben in der unmittelbaren Umgebung von Epizentren ausgelöst wurden, zu treffen und zu verbessern Auf einer langen Zeitskala (1-100 ky) und über einen Gebirgsgürtel (100 km) habe ich die durch Erdbeben ausgelösten konkurrierenden Prozesse von Abflachung von Topografie durch Erosion und den Aufbau von Topografie durch Hebung, modelliert. Auf einer mittleren Zeitskala (1-10 Jahre) und einer relativ kleinen Hangskala (0,1-1 km) habe ich geomorphologische und seismologische Daten erhoben, welche die anhaltenden Auswirkungen von Erdbeben auf Landschaftseigenschaften und deren Dynamic hervorheben. Zuerst habe ich eine Datenbank von Erdbeben erstellt, welche erhebliche Hangrutschungen ausgelöst hatten, einschliesslich einer Schätzung des gesamten Hangrutschungsvolumens und der Erdbebencharakteristiken wie z.B. seismischer Moment und Lage des Hypozentrums. Ich habe auch beurteilt, wie die Kartierung von Erdrutschen die Abschätzungen des Gesamtvolumens fehlerhaft beeinflussen können und präsentiere einen Algorithmus, um solche Fehler automatisch zu erkennen. Diese Datenbank wurde verwendet, um eine physisch-basierte Vorhersage der durch Erdbeben verursachten gesamten Hangrutschungsflächen und Volumen zu testen, welche auf seismologischen Skalierungsbeziehungen und auf einer statistischen Beschreibung der Landschaftseigenschaften basiert. Zweitens untersuchte ich den Einfluss von starken Erdbeben auf die Landschaftsdynamik durch das Vermessen der temporalen Entwicklung der Suszeptibilität von Hangrutschungen. Ich habe gezeigt, dass die stark erhöhte Hangrutschrate nach dem Erdbeben schrittweise nach einigen Jahren zurückging. Diesen Rückgang über die Zeit interpretiere ich als die Zerrüttung von oberflächennahem Gestein durch das Erdbeben und die Heilung der dadurch entstandenen Risse über der Zeit. Meine Daten deuten darauf hin, dass die Zerrüttungen und die anschliessende Heilung des Festgesteins in dem epizentralen Gebieten mit ambienten, seismischen Hintergrundrauschen überwacht werden kann. Möglicherweise wird die Heilung zusätzlich durch andauernde post-seismische Deformation angetrieben. Am Ende der Arbeit vergleiche ich meine entwickelten Modelle von erdbebenbedingten Hangrutschungen mit einer Standardformel für erdbebenverursachte Oberflächendeformierung. Mit diesem Vergleich zeige ich welche Parameter den Wettstreit zwischen der Hebung von Topografie und der gleichzeitigen Zerstörung von Topografie durch Erdbeben bestimmen. Ich zeige, dass nur mittlere - Mw ~ 7 - Erdbeben die Topografie reduzieren können im Gegensatz zu stärkeren - Mw > 8 - Beben die immer einen effektive Bildung von Topografie verursachen. Meine Ergebnisse zeigen die komplexen Zusammenhänge von Erdbeben in der Gebirgsbildung. KW - earthquake KW - landslide KW - erosion KW - Erdbeben KW - Erdrutsch KW - Erosion KW - topography KW - Topographie Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-96808 ER - TY - JOUR A1 - Menges, Johanna A1 - Hovius, Niels A1 - Andermann, Christoff A1 - Lupker, Maarten A1 - Haghipour, Negar A1 - Märki, Lena A1 - Sachse, Dirk T1 - Variations in organic carbon sourcing along a trans-Himalayan river determined by a Bayesian mixing approach JF - Geochimica et cosmochimica acta : journal of the Geochemical Society and the Meteoritical Society N2 - Rivers transfer particulate organic carbon (POC) from eroding mountains into geological sinks. Organic carbon source composition and selective mobilization have been shown to affect the type and quantity of POC export, but their combined effects across complex mountain ranges remain underexplored. Here, we examine the variation in organic carbon sourcing and transport in the trans-Himalayan Kali Gandaki River catchment, along strong gradients in precipitation, rock type and vegetation. Combining bulk stable nitrogen, and stable and radioactive organic carbon isotopic composition of bedrock, litter, soil and river sediment samples with a Bayesian end-member mixing approach, we differentiate POC sources along the river and quantify their export. Our analysis shows that POC export from the Tibetan segment of the catchment, where carbon bearing shales are partially covered by aged and modern soils, is dominated by petrogenic POC. Based on our data we re-assess the presence of aged biospheric OC in this part of the catchment, and its contribution to the river load. In the High Himalayan segment, we observed low inputs of petrogenic and biospheric POC, likely due to very low organic carbon concentrations in the metamorphic bedrock, combined with erosion dominated by deep-seated landslides. Our findings show that along the Kali Gandaki River, the sourcing of sediment and organic carbon are decoupled, due to differences in rock organic carbon content, soil and above ground carbon stocks, and geomorphic process activity. While the fast eroding High Himalayas are the principal source of river sediment, the Tibetan headwaters, where erosion rates are lower, are the principal source of organic carbon. To robustly estimate organic carbon export from the Himalayas, the mountain range should be divided into tectono-physiographic zones with distinct organic carbon yields due to differences in substrate and erosion processes and rates. KW - particulate organic carbon KW - Himalaya KW - rivers KW - carbon cycle KW - stable KW - isotopes KW - erosion KW - end-member mixing Y1 - 2020 U6 - https://doi.org/10.1016/j.gca.2020.07.003 SN - 0016-7037 VL - 286 SP - 159 EP - 176 PB - Elsevier CY - New York [u.a.] ER -