TY - JOUR A1 - Voss, Katalyn A. A1 - Bookhagen, Bodo A1 - Sachse, Dirk A1 - Chadwick, Oliver A. T1 - Variation of deuterium excess in surface waters across a 5000-m elevation gradient in eastern Nepal JF - Journal of hydrology N2 - The strong elevation gradient of the Himalaya allows for investigation of altitude and orographic impacts on surface water delta O-18 and delta D stable isotope values. This study differentiates the time- and altitude-variable contributions of source waters to the Arun River in eastern Nepal. It provides isotope data along a 5000-m gradient collected from tributaries as well as groundwater, snow, and glacial-sourced surface waters and time-series data from April to October 2016. We find nonlinear trends in delta O-18 and delta D lapse rates with high-elevation lapse rates (4000-6000 masl) 5-7 times more negative than low-elevation lapse rates (1000-3000 masl). A distinct seasonal signal in delta O-18 and delta D lapse rates indicates time-variable source-water contributions from glacial and snow meltwater as well as precipitation transitions between the Indian Summer Monsoon and Winter Westerly Disturbances. Deuterium excess correlates with the extent of snowpack and tracks melt events during the Indian Summer Monsoon season. Our analysis identifies the influence of snow and glacial melt waters on river composition during low-flow conditions before the monsoon (April/May 2016) followed by a 5-week transition to the Indian Summer Monsoon-sourced rainfall around mid-June 2016. In the post-monsoon season, we find continued influence from glacial melt waters as well as ISM-sourced groundwater. KW - stable isotopes KW - Himalaya KW - glacier KW - snow KW - precipitation KW - seasonality Y1 - 2020 U6 - https://doi.org/10.1016/j.jhydrol.2020.124802 SN - 0022-1694 SN - 1879-2707 VL - 586 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Vogeli, Natalie A1 - Najman, Yani A1 - van der Beek, Peter A1 - Huyghe, Pascale A1 - Wynn, Peter M. A1 - Govin, Gwladys A1 - van der Veen, Iris A1 - Sachse, Dirk T1 - Lateral variations in vegetation in the Himalaya since the Miocene and implications for climate evolution JF - Earth & planetary science letters N2 - The Himalaya has a major influence on global and regional climate, in particular on the Asian monsoon system. The foreland basin of the Himalaya contains a record of tectonics and paleoclimate since the Miocene. Previous work on the evolution of vegetation and climate has focused on the central and western Himalaya, where a shift from C3 to C4 vegetation has been observed at similar to 7 Ma and linked to increased seasonality, but the climatic evolution of the eastern part of the orogen is less well understood. In order to track vegetation as a marker of monsoon intensity and seasonality, we analyzed delta C-13 and 8180 values of soil carbonate and associated delta C-13 values of bulk organic carbon from previously dated sedimentary sections exposing the syn-orogenic detrital Dharamsala and Siwalik Groups in the west, and, for the first time, the Siwalik Group in the east of the Himalayan foreland basin. Sedimentary records span from 20 to 1 Myr in the west (Joginder Nagar, Jawalamukhi, and Haripur Kolar sections) and from 13 to 1 Myr in the east (Kameng section), respectively. The presence of soil carbonate in the west and its absence in the east is a first indication of long-term lateral climatic variation, as soil carbonate requires seasonally arid conditions to develop. delta C-13 values in soil carbonate show a shift from around -10 parts per thousand to -2 parts per thousand at similar to 7 Ma in the west, which is confirmed by delta C-13 analyses on bulk organic carbon that show a shift from around -23 parts per thousand to -19 parts per thousand at the same time. Such a shift in isotopic values is likely to be associated with a change from C3 to C4 vegetation. In contrast, delta C-13 values of bulk organic carbon remain at 23 parts per thousand o in the east. Thus, our data show that the current east -west variation in climate was established at similar to 7 Ma. We propose that the regional change towards a more seasonal climate in the west is linked to a decrease of the influence of the Westerlies, delivering less winter precipitation to the western Himalaya, while the east remained annually humid due to its proximity to the monsoonal moisture source. (C) 2017 Elsevier B.V. All rights reserved. KW - Himalaya KW - stable carbon isotopes KW - paleovegetation KW - Siwalik KW - pre-Siwalik KW - monsoon Y1 - 2017 U6 - https://doi.org/10.1016/j.epsl.2017.04.037 SN - 0012-821X SN - 1385-013X VL - 471 SP - 1 EP - 9 PB - Elsevier CY - Amsterdam ER - TY - THES A1 - van der Veen, Iris T1 - Defining moisture sources and (palaeo)environmental conditions using isotope geochemistry in the NW Himalaya N2 - Anthropogenic climate change alters the hydrological cycle. While certain areas experience more intense precipitation events, others will experience droughts and increased evaporation, affecting water storage in long-term reservoirs, groundwater, snow, and glaciers. High elevation environments are especially vulnerable to climate change, which will impact the water supply for people living downstream. The Himalaya has been identified as a particularly vulnerable system, with nearly one billion people depending on the runoff in this system as their main water resource. As such, a more refined understanding of spatial and temporal changes in the water cycle in high altitude systems is essential to assess variations in water budgets under different climate change scenarios. However, not only anthropogenic influences have an impact on the hydrological cycle, but changes to the hydrological cycle can occur over geological timescales, which are connected to the interplay between orogenic uplift and climate change. However, their temporal evolution and causes are often difficult to constrain. Using proxies that reflect hydrological changes with an increase in elevation, we can unravel the history of orogenic uplift in mountain ranges and its effect on the climate. In this thesis, stable isotope ratios (expressed as δ2H and δ18O values) of meteoric waters and organic material are combined as tracers of atmospheric and hydrologic processes with remote sensing products to better understand water sources in the Himalayas. In addition, the record of modern climatological conditions based on the compound specific stable isotopes of leaf waxes (δ2Hwax) and brGDGTs (branched Glycerol dialkyl glycerol tetraethers) in modern soils in four Himalayan river catchments was assessed as proxies of the paleoclimate and (paleo-) elevation. Ultimately, hydrological variations over geological timescales were examined using δ13C and δ18O values of soil carbonates and bulk organic matter originating from sedimentological sections from the pre-Siwalik and Siwalik groups to track the response of vegetation and monsoon intensity and seasonality on a timescale of 20 Myr. I find that Rayleigh distillation, with an ISM moisture source, mainly controls the isotopic composition of surface waters in the studied Himalayan catchments. An increase in d-excess in the spring, verified by remote sensing data products, shows the significant impact of runoff from snow-covered and glaciated areas on the surface water isotopic values in the timeseries. In addition, I show that biomarker records such as brGDGTs and δ2Hwax have the potential to record (paleo-) elevation by yielding a significant correlation with the temperature and surface water δ2H values, respectively, as well as with elevation. Comparing the elevation inferred from both brGDGT and δ2Hwax, large differences were found in arid sections of the elevation transects due to an additional effect of evapotranspiration on δ2Hwax. A combined study of these proxies can improve paleoelevation estimates and provide recommendations based on the results found in this study. Ultimately, I infer that the expansion of C4 vegetation between 20 and 1 Myr was not solely dependent on atmospheric pCO2, but also on regional changes in aridity and seasonality from to the stable isotopic signature of the two sedimentary sections in the Himalaya (east and west). This thesis shows that the stable isotope chemistry of surface waters can be applied as a tool to monitor the changing Himalayan water budget under projected increasing temperatures. Minimizing the uncertainties associated with the paleo-elevation reconstructions were assessed by the combination of organic proxies (δ2Hwax and brGDGTs) in Himalayan soil. Stable isotope ratios in bulk soil and soil carbonates showed the evolution of vegetation influenced by the monsoon during the late Miocene, proving that these proxies can be used to record monsoon intensity, seasonality, and the response of vegetation. In conclusion, the use of organic proxies and stable isotope chemistry in the Himalayas has proven to successfully record changes in climate with increasing elevation. The combination of δ2Hwax and brGDGTs as a new proxy provides a more refined understanding of (paleo-)elevation and the influence of climate. N2 - Die Auswirkungen des menschgemachten Klimawandels wirken sich auch auf den Wasserkreislauf aus. Während manche Regionen höhere Niederschlagsmengen zu erwarten haben, werden andere mit stärkeren und häufigeren Trockenperioden zu konfrontiert sein. Diese Veränderungen haben einen unmittelbaren Einfluss auf Evaporation, Langzeit-Wasserreservoire, Grundwasserbildung, Schneefall und Gletscher. Da Gebirge und Hochplateaus überdurchschnittlich von den Auswirkungen des Klimawandels betroffen sind, ist die Wasserversorgung der Menschen entlang der dort entspringenden Flüsse gefährdet. Insbesondere der Himalaya gilt als instabile Region, dessen Abflüsse die Wasserversorgung von annähernd einer Milliarde Menschen gewährleisten. Um zu erwartende Veränderungen des Wasserbudgets in Abhängigkeit von verschiedenen möglichen Klimawandelszenarien abschätzen zu können, ist ein detaillierteres Verständnis des Wasserkreislaufs in Hochgebirgen und -plateaus erforderlich. Neben dem globalen Klimawandel gibt es weitere Faktoren, die sich auf den Wasserkreislauf auswirken. Das Wechselspiel zwischen Gebirgsbildung und klimatischen Bedingungen beeinflusst den Wasserkreislauf auf geologischen Zeitskalen. Entsprechende Veränderungen und ihre Auswirkungen lassen sich jedoch nur eingeschränkt bestimmen. Mittels geeigneter Proxies für höhenbedingte Änderungen der Hydrologie lassen sich der Orogeneseverlauf sowie dessen klimatische Auswirkungen allerdings genauer rekonstruieren. In der vorliegenden Arbeit werden die Verhältnisse stabiler Isotope (als δ2H und δ18O ausgedrückt) von meteorischen Wassern sowie von organischem Material mit Methoden der Satellitenfernerkundung als Indikator für atmosphärische und hydrologische Prozesse kombiniert, um ein besseres Verständnis der verschiedenen Wasserquellen des Himalaya zu erlangen. Darüber hinaus wurde der Link zwischen modernen klimatischen Bedingungen und verbindungsspezifischen stabilen Isotopen von Blattwachsen (δ2Hwax) sowie von brGDGTs (branched Glycerol dialkyl glycerol tetraethers) rezenter Bodenproben aus den Einzugsgebieten vierer Flüsse des Himalaya hergestellt, um sie als Paläo-Klima- und Paläo-Höhenproxy verwenden zu können. Zu guter Letzt wurden hydrologische Veränderungen auf einer Zeitskala von 20 Mio. Jahren anhand von δ13C- and δ18O-Werten von Bodencarbonat und organischem Material aus Sedimentschnitten der pre-Siwalik und Siwalik-Einheiten nachvollzogen. Die Erkenntnisse dieser tragen zu einer deutlich genaueren Rekonstruktion von Vegetationsänderungen und der Entwicklung der Monsun-Intensität sowie -Saisonalität bei. Die Isotopenzusammensetzung der Oberflächenwasser der untersuchten Flüsse wird hauptsächlich durch Rayleigh-Destillation der im Wesentlichen vom Indischen Sommer Monsun eingetragenen Feuchtigkeit bestimmt. Der durch Satellitenfernerkundungsdaten bestätigte Anstieg des Deuterium-Exzesses (d-excess) im Frühjahr verdeutlicht den signifikanten Einfluss von Schnee- und Gletscherschmelze, der auch in Zeitreihen von Oberflächenwasserproben erkennbar ist. Sowohl brGDGT als auch δ2Hwax können potentiell die absolute Höhe zum Zeitpunkt ihrer Synthese abbilden, da sie stark mit der Lufttemperatur, bzw. mit Oberflächenwasser δ2H und somit indirekt auch mit der Höhe korreliert sind. Im direkten Vergleich der mittels brGDGT und δ2Hwax rekonstruierten Höhen ergaben sich insbesondere in ariden Teilen der Höhenprofile große Unterschiede. Diese sind hauptsächlich auf verstärkte Evapotranspiration und deren Auswirkung auf Pflanzenwasser und -wachse zurückzuführen. Basierend auf den Erkenntnissen der vorliegenden Arbeit können weitere vergleichende Untersuchungen beider Proxies genauere Paläo-Höhenstudien ermöglichen. Diese Arbeit zeigt, dass die Isotopie von Oberflächenwassern genutzt werden kann, um den sich ändernden Wasserhaushalt des Himalya im Kontext voraussichtlich weiter ansteigender Temperaturen zu beobachten. Unsicherheiten bei der Rekonstruktion von Paläo-Höhen konnten durch eine vergleichende Analyse zweier organischer Proxies (δ2Hwax and brGDGTs) aus Paläo-Bodenproben des Himalayas minimiert werden. Verhältnisse stabiler Isotope von Blattwachsen aus diesen Bodenproben spiegeln die Entwicklung der Vegetation unter dem Einfluss des Monsuns im späten Miozän wider. Zusammenfassend wurde erfolgreich gezeigt, dass organische Proxies und stabile Isotope höhenabhängige Änderungen des Klimas im Himalaya aufzeichnen können. Die Kombination von δ2Hwax and brGDGTs als neuer Proxy ermöglicht eine deutlich differenziertere Betrachtung von rekonstruierten Paläo-Höhen sowie Paläo-Klima. KW - stable isotope KW - Himalaya KW - n-alkanes KW - d-excess KW - biomarker KW - paleohydrology KW - GDGT KW - GDGT KW - Himalaya KW - Biomarker KW - Deuterium Exzesses KW - n-alkane KW - Paläohydrologie KW - stabilen Isotopen Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-514397 ER - TY - JOUR A1 - Thiede, Rasmus Christoph A1 - Ehlers, Todd T1 - Large spatial and temporal variations in Himalayan denudation JF - Earth & planetary science letters N2 - In the last decade growing interest has emerged in quantifying the spatial and temporal variations in mountain building. Until recently, insufficient data have been available to attempt such a task at the scale of large orogens such as the Himalaya. The Himalaya accommodates ongoing convergence between India and Eurasia and is a focal point for studying orogen evolution and hypothesized interactions between tectonics and climate. Here we integrate 1126 published bedrock mineral cooling ages with a transient 1D Monte-Carlo thermal-kinematic erosion model to quantify the denudation histories along similar to 2700 km of the Himalaya. The model free parameter is a temporally variable denudation rate from 50 Ma to present. Thermophysical material properties and boundary conditions were tuned to individual study areas. Monte-Carlo simulations were conducted to identify the range of denudation histories that can reproduce the observed cooling ages. Results indicate large temporal and spatial variations in denudation and these are resolvable across different tectonic units of the Himalaya. More specifically, across > 1000 km of the southern Greater Himalaya denudation rates were highest (similar to 1.5-3 mm/yr) between similar to 10 and 2 Ma and lower (0.5-2.6 mm/yr) over the last 2 My. These differences are best determined in the NW-Himalaya. In contrast to this, across the similar to 2500 km length of the northern Greater Himalaya denudation rates vary over length scales of similar to 300-1700 km. Slower denudation (<1 mm/yr) occurred between 10 and 4 Ma followed by a large increase (1.2-2.6 mm/yr) in the last similar to 4 Ma. We find that only the southern Greater Himalayan Sequence clearly supports a continuous co-evolution of tectonics, climate and denudation. Results from the higher elevation northern Greater Himalaya suggest either tectonic driven variations in denudation due to a ramp-flat geometry in the main decollement and/or recent glacially enhanced denudation. KW - Himalaya KW - exhumation KW - low temperature chronology KW - thermal modeling KW - erosion Y1 - 2013 U6 - https://doi.org/10.1016/j.epsl.2013.03.004 SN - 0012-821X VL - 371 IS - 2 SP - 278 EP - 293 PB - Elsevier CY - Amsterdam ER - TY - THES A1 - Thiede, Rasmus Christoph T1 - Tectonic and climatic controls on orogenic processes : the Northwest Himalaya, India N2 - The role of feedback between erosional unloading and tectonics controlling the development of the Himalaya is a matter of current debate. The distribution of precipitation is thought to control surface erosion, which in turn results in tectonic exhumation as an isostatic compensation process. Alternatively, subsurface structures can have significant influence in the evolution of this actively growing orogen. Along the southern Himalayan front new 40Ar/39Ar white mica and apatite fission track (AFT) thermochronologic data provide the opportunity to determine the history of rock-uplift and exhumation paths along an approximately 120-km-wide NE-SW transect spanning the greater Sutlej region of the northwest Himalaya, India. 40Ar/39Ar data indicate, consistent with earlier studies that first the High Himalayan Crystalline, and subsequently the Lesser Himalayan Crystalline nappes were exhumed rapidly during Miocene time, while the deformation front propagated to the south. In contrast, new AFT data delineate synchronous exhumation of an elliptically shaped, NE-SW-oriented ~80 x 40 km region spanning both crystalline nappes during Pliocene-Quaternary time. The AFT ages correlate with elevation, but show within the resolution of the method no spatial relationship to preexisting major tectonic structures, such as the Main Central Thrust or the Southern Tibetan Fault System. Assuming constant exhumation rates and geothermal gradient, the rocks of two age vs. elevation transects were exhumed at ~1.4 ±0.2 and ~1.1 ±0.4 mm/a with an average cooling rate of ~50-60 °C/Ma during Pliocene-Quaternary time. The locus of pronounced exhumation defined by the AFT data coincides with a region of enhanced precipitation, high discharge, and sediment flux rates under present conditions. We therefore hypothesize that the distribution of AFT cooling ages might reflect the efficiency of surface processes and fluvial erosion, and thus demonstrate the influence of erosion in localizing rock-uplift and exhumation along southern Himalayan front, rather than encompassing the entire orogen.Despite a possible feedback between erosion and exhumation along the southern Himalayan front, we observe tectonically driven, crustal exhumation within the arid region behind the orographic barrier of the High Himalaya, which might be related to and driven by internal plateau forces. Several metamorphic-igneous gneiss dome complexes have been exhumed between the High Himalaya to the south and Indus-Tsangpo suture zone to the north since the onset of Indian-Eurasian collision ~50 Ma ago. Although the overall tectonic setting is characterized by convergence the exhumation of these domes is accommodated by extensional fault systems.Along the Indian-Tibetan border the poorly described Leo Pargil metamorphic-igneous gneiss dome (31-34°N/77-78°E) is located within the Tethyan Himalaya. New field mapping, structural, and geochronologic data document that the western flank of the Leo Pargil dome was formed by extension along temporally linked normal fault systems. Motion on a major detachment system, referred to as the Leo Pargil detachment zone (LPDZ) has led to the juxtaposition of low-grade metamorphic, sedimentary rocks in the hanging wall and high-grade metamorphic gneisses in the footwall. However, the distribution of new 40Ar/39Ar white mica data indicate a regional cooling event during middle Miocene time. New apatite fission track (AFT) data demonstrate that subsequently more of the footwall was extruded along the LPDZ in a brittle stage between 10 and 2 Ma with a minimum displacement of ~9 km. Additionally, AFT-data indicate a regional accelerated cooling and exhumation episode starting at ~4 Ma. Thus, tectonic processes can affect the entire orogenic system, while potential feedbacks between erosion and tectonics appear to be limited to the windward sides of an orogenic systems. N2 - Welche Rolle Wechselwirkungen zwischen der Verteilung des Niederschlags, Erosion und Tektonik während der Entwicklung des Himalayas über geologische Zeiträume gespielt haben bzw. heute spielen, ist umstritten. Dabei ist von besonderem Interesse, ob Erosion ausschliesslich in Folge tiefkrustaler Hebungsprozesse entsteht und gesteuert wird, oder ob Regionen besonders effektiver Erosion, bedingt durch isostatische Kompensation, die Lokation tektonischer Deformation innerhalb aktiver Orogene beeinflussen können. Entlang der südlichen Himalayafront ermöglichen neue thermochronologische 40Ar/39Ar-Hellglimmer- und Apatite-Spaltspur-Alter die Bestimmung der Exhumationspfade entlang eines 120-km-langen NE-SW-gerichteten Profils, dass quer durch die gesamte Sutlej-Region des nordwestlichen, indischen Himalayas verläuft. Dabei deuten die 40Ar/39Ar-Daten in übereinstimmung mit früheren Studien darauf hin, dass zuerst das Kristallin des Hohen Himalayas und anschliessend, südwärts propagierend, das Kristallin des Niederen Himalayas während des Miozäns exhumiert worden ist. Im Gegensatz dazu weisen die neuen Apatit-Spaltspur-Alter auf eine gleichmässige und zeitgleiche Exhumation beider kristallinen Decken entlang des Sutlejflusses. Dieser 80x40 km weite Bereich formt einen elliptischen, nordost-südwest orientierten Sektor erhöhter Exhumationsraten während des Pliozäns und Quartärs. Innerhalb des Fehlerbereichs der Spaltspurmethode zeigen die Alter eine gute Korrelation mit der Höhe, zeigen aber gleichzeitig keine Abhängigkeit zu bedeutenden tektonischen Störungen, wie die "Main Central Thrust" oder dem "Southern Tibetan Fault System". Unter der vereinfachten Annahme konstanter Exhumationsraten deuten zwei verschiedene Höhenprofile auf Exhumationraten in der Grössenordnung von ~1,4 ±0,2 und ~1,1 ±0,4 mm/a bei einer durchschnittlichen Abkühlrate von ~50-60 °C/m.y. während des Pliozäns bzw. Quartärs hin. Der anhand von Spaltspuraltern bestimmte Sektor verstärkter Exhumation korreliert mit dem Gebiet, das während des Holozäns hohen Niederschlags-, Erosion- bzw. Sedimenttransportraten ausgesetzt ist. Daher vermuten wir, dass die Verteilung von jungen Spaltspuraltern den regionalen Grad der Effiziens von Oberflächenprozessen und fluviatiler Erosion wiederspiegelt. Dies deutet auf einen Zusammenhang zwischen Erosion und der Lokalisierung von Hebung und Exhumation entlang der südlichen Front des Himalayas hin, und zeigt gleichzeitig, dass die Exhumation nicht einfach über die gesamte Front gleichmässig verteilt ist.Trotz der Wechselwirkungen zwischen Exhumation und Erosion, die möglicherweise die Entwicklung der südlichen Himalayafront beeinflussen, beobachten wir auch tiefkrustale tektonische Exhumation in ariden Gebieten nördlich des Hohen Himalayas, die vermutlich im Zusammenhang mit plateauinternenen Deformationsprozessen steht. So haben sich zum Beispiel mehrere metaplutonische Gneissdomkomplexe zwischen dem Hohen Himalaya im Süden und der Indus-Tsangpo Suturzone im Norden seit der Indien-Asien Kollision vor ca. 50 Millionen Jahren entwickelt. Obwohl die Dome sich grossräumig in einem kommpressiven Spannungsfeld befinden, werden sie lokal entlang von Extensionsstrukturen exhumiert. Bis heute sind die Ursachen für die Entstehung dieser Prozesse umstritten.Entlang der Indisch-Tibetischen Grenze erstreckt sich der fast vollkommen unbeschriebene Leo-Pargil-Gneissdomkomplex (31-34°N/77-78°E) innerhalb des Tethyschen Himalayas. Neue Geländekartierungen, strukturelle und geochronologische Daten der westliche Flanke des Leo Pargil Domes dokumentieren, dass dieser sich entlang zeitlich verbundener Abschiebungssysteme in einem extensionalen Regime entwickelt hat. Im Gelände wird der Dome von einem mächtigen Störungssystem begrenzt, die "Leo Pargil Detachment Zone" (LPDZ). Durch den tektonischen Versatz entlang der LPDZ liegen heute niedriggradig metamorphe Sedimentgesteine im Hangenden neben hochgradigen Gneisen in Liegenden. Unabhängig von der Probenlokation entlang des aufgeschlossenen Störungssystemes ergeben alle neuen 40Ar/39Ar-Hellglimmeralter um die 15 Ma und deuten auf ein regional wichtiges Abkühlungsereignis hin. Im Gegensatz dazu deuten die neuen Apatit-Spaltspuralter (AFT) auf eine kontinuierliche Exhumation der hochmetamorphen Einheiten im Liegenden der LPDZ unter sprödtektonischen Bedingungen zwischen 10 und 2 Ma hin, bei einem minimalen Versatz von ungefähr 9 km. Desweiteren deuten die Apatit-Spaltspur-Daten auf überregionale beschleunigte Abkülhlungs- bzw Exhumationsphase seit 4 Ma.Daraus kann gefolgert werden, dass die tektonischen Prozesse die Entwicklung des gesamten Gebirges beflussen können, während potenzielle Wechselwirkungen zwischen Erosion und Tektonik auf die luvwärtigen Gebirgsflanken beschränkt zu bleiben scheinen. KW - Gebirgsbildung KW - Erosion KW - Hebung KW - Himalaya KW - Spalt Spuren KW - Thermochronologie KW - Klima KW - Monsoon KW - Indien KW - Orogen KW - erosion KW - uplift KW - Himalaya KW - fission track KW - thermochronology KW - climate KW - monsoon KW - India Y1 - 2005 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-2281 ER - TY - JOUR A1 - Stolle, Amelie A1 - Schwanghart, Wolfgang A1 - Andermann, Christoff A1 - Bernhardt, Anne A1 - Fort, Monique A1 - Jansen, John D. A1 - Wittmann, Hella A1 - Merchel, Silke A1 - Rugel, Georg A1 - Adhikari, Basanta Raj A1 - Korup, Oliver T1 - Protracted river response to medieval earthquakes JF - Earth surface processes and landforms : the journal of the British Geomorphological Research Group N2 - Mountain rivers respond to strong earthquakes by rapidly aggrading to accommodate excess sediment delivered by co-seismic landslides. Detailed sediment budgets indicate that rivers need several years to decades to recover from seismic disturbances, depending on how recovery is defined. We examine three principal proxies of river recovery after earthquake-induced sediment pulses around Pokhara, Nepal's second largest city. Freshly exhumed cohorts of floodplain trees in growth position indicate rapid and pulsed sedimentation that formed a fan covering 150 km2 in a Lesser Himalayan basin with tens of metres of debris between the 11th and 15th centuries AD. Radiocarbon dates of buried trees are consistent with those of nearby valley deposits linked to major medieval earthquakes, such that we can estimate average rates of re-incision since. We combine high-resolution digital elevation data, geodetic field surveys, aerial photos, and dated tree trunks to reconstruct geomorphic marker surfaces. The volumes of sediment relative to these surfaces require average net sediment yields of up to 4200 t km–2 yr–1 for the 650 years since the last inferred earthquake-triggered sediment pulse. The lithological composition of channel bedload differs from that of local bedrock, confirming that rivers are still mostly evacuating medieval valley fills, locally incising at rates of up to 0.2 m yr–1. Pronounced knickpoints and epigenetic gorges at tributary junctions further illustrate the protracted fluvial response; only the distal portions of the earthquake-derived sediment wedges have been cut to near their base. Our results challenge the notion that mountain rivers recover speedily from earthquakes within years to decades. The valley fills around Pokhara show that even highly erosive Himalayan rivers may need more than several centuries to adjust to catastrophic perturbations. Our results motivate some rethinking of post-seismic hazard appraisals and infrastructural planning in active mountain regions. KW - fluvial response KW - sediment yield KW - earthquakes KW - Nepal KW - Himalaya Y1 - 2018 U6 - https://doi.org/10.1002/esp.4517 SN - 0197-9337 SN - 1096-9837 VL - 44 IS - 1 SP - 331 EP - 341 PB - Wiley CY - Hoboken ER - TY - THES A1 - Stolle, Amelie T1 - Catastrophic Sediment Pulses in the Pokhara Valley, Nepal T1 - Katastrophale Sediment Ablagerungen im Pokhara Tal, Nepal N2 - Fluvial terraces, floodplains, and alluvial fans are the main landforms to store sediments and to decouple hillslopes from eroding mountain rivers. Such low-relief landforms are also preferred locations for humans to settle in otherwise steep and poorly accessible terrain. Abundant water and sediment as essential sources for buildings and infrastructure make these areas amenable places to live at. Yet valley floors are also prone to rare and catastrophic sedimentation that can overload river systems by abruptly increasing the volume of sediment supply, thus causing massive floodplain aggradation, lateral channel instability, and increased flooding. Some valley-fill sediments should thus record these catastrophic sediment pulses, allowing insights into their timing, magnitude, and consequences. This thesis pursues this theme and focuses on a prominent ~150 km2 valley fill in the Pokhara Valley just south of the Annapurna Massif in central Nepal. The Pokhara Valley is conspicuously broad and gentle compared to the surrounding dissected mountain terrain, and is filled with locally more than 70 m of clastic debris. The area’s main river, Seti Khola, descends from the Annapurna Sabche Cirque at 3500-4500 m asl down to 900 m asl where it incises into this valley fill. Humans began to settle on this extensive fan surface in the 1750’s when the Trans-Himalayan trade route connected the Higher Himalayas, passing Pokhara city, with the subtropical lowlands of the Terai. High and unstable river terraces and steep gorges undermined by fast flowing rivers with highly seasonal (monsoon-driven) discharge, a high earthquake risk, and a growing population make the Pokhara Valley an ideal place to study the recent geological and geomorphic history of its sediments and the implication for natural hazard appraisals. The objective of this thesis is to quantify the timing, the sedimentologic and geomorphic processes as well as the fluvial response to a series of strong sediment pulses. I report diagnostic sedimentary archives, lithofacies of the fan terraces, their geochemical provenance, radiocarbon-age dating and the stratigraphic relationship between them. All these various and independent lines of evidence show consistently that multiple sediment pulses filled the Pokhara Valley in medieval times, most likely in connection with, if not triggered by, strong seismic ground shaking. The geomorphic and sedimentary evidence is consistent with catastrophic fluvial aggradation tied to the timing of three medieval Himalayan earthquakes in ~1100, 1255, and 1344 AD. Sediment provenance and calibrated radiocarbon-age data are the key to distinguish three individual sediment pulses, as these are not evident from their sedimentology alone. I explore various measures of adjustment and fluvial response of the river system following these massive aggradation pulses. By using proxies such as net volumetric erosion, incision and erosion rates, clast provenance on active river banks, geomorphic markers such as re-exhumed tree trunks in growth position, and knickpoint locations in tributary valleys, I estimate the response of the river network in the Pokhara Valley to earthquake disturbance over several centuries. Estimates of the removed volumes since catastrophic valley filling began, require average net sediment yields of up to 4200 t km−2 yr−1 since, rates that are consistent with those reported for Himalayan rivers. The lithological composition of active channel-bed load differs from that of local bedrock material, confirming that rivers have adjusted 30-50% depending on data of different tributary catchments, locally incising with rates of 160-220 mm yr−1. In many tributaries to the Seti Khola, most of the contemporary river loads come from a Higher Himalayan source, thus excluding local hillslopes as sources. This imbalance in sediment provenance emphasizes how the medieval sediment pulses must have rapidly traversed up to 70 km downstream to invade the downstream reaches of the tributaries up to 8 km upstream, thereby blocking the local drainage and thus reinforcing, or locally creating new, floodplain lakes still visible in the landscape today. Understanding the formation, origin, mechanism and geomorphic processes of this valley fill is crucial to understand the landscape evolution and response to catastrophic sediment pulses. Several earthquake-triggered long-runout rock-ice avalanches or catastrophic dam burst in the Higher Himalayas are the only plausible mechanisms to explain both the geomorphic and sedimentary legacy that I document here. In any case, the Pokhara Valley was most likely hit by a cascade of extremely rare processes over some two centuries starting in the early 11th century. Nowhere in the Himalayas do we find valley fills of comparable size and equally well documented depositional history, making the Pokhara Valley one of the most extensively dated valley fill in the Himalayas to date. Judging from the growing record of historic Himalayan earthquakes in Nepal that were traced and dated in fault trenches, this thesis shows that sedimentary archives can be used to directly aid reconstructions and predictions of both earthquake triggers and impacts from a sedimentary-response perspective. The knowledge about the timing, evolution, and response of the Pokhara Valley and its river system to earthquake triggered sediment pulses is important to address the seismic and geomorphic risk for the city of Pokhara. This thesis demonstrates how geomorphic evidence on catastrophic valley infill can help to independently verify paleoseismological fault-trench records and may initiate re-thinking on post-seismic hazard assessments in active mountain regions. N2 - Der Transport von Sedimenten in Flüssen ist wichtig, um Landschaftsformen in Gebirgsregionen entstehen zu lassen. Eine erhöhte, plötzliche Sedimentzufuhr, beispielsweise durch Massenbewegungen ausgelöst, kann ein Flusssystem schnell aus dem Gleichgewicht bringen. Innerhalb kurzer Zeit transportiertes Sediment wird häufig an Überschwemmungsflächen abgelagert, was zu instabilen Flussverläufen, erhöhtem Sedimentabtrag und vermehrten Überschwemmungen führen kann. Talverfüllungen, Schwemmmfächer, Flussterrassen und Überschwemmungsebenen sind in diesem Zusammenhang die am häufigsten vorkommenden Landschaftsformen, um große Materialvolumen zu speichern. Weil Wasser und Sediment als Baustoff in ausreichenden Mengen zur Verfügung stehen, sind sie bevorzugte Siedlungsflächen. Diese Dissertation untersucht in drei Studien die Entstehung, geomorphologische und sedimentologische Prozesse, sowie die Anpassung des Flusssystems auf einen erhöhten Sedimenteintrag des heute mit Sedimenten verfüllten Pokhara Tals im zentralen Himalaya. Die Stadt Pokhara liegt am Fuße des bis zu 8000 m hohen Annapurna Massivs auf einem ~150 km2 großen, aus klastischen Sedimentablagerungen bestehender Fächer. Das Tal ist von bis zu 70 m hohen Terrassen gekennzeichnen und auffallend flach im Vergleich zur umliegenden Topographie. Der Seti Khola entwässert das Annapurna Massiv in einer Höhe von 3500-5000 m ü.N.N. und erreicht nach kurzer Distanz den Pokhara Fächer. Erste Bewohner siedelten sich in den 1750er Jahren an als die frühere Handelsroute den Hohen Himalaya mit dem subtropischen Tiefland (Terai) verbunden hat. Seither wächst die Stadt stetig und ist heute, nach Kathmandu, die zweitgrößte Stadt Nepals. Durch die Nähe der geologischen Hauptstörung zwischen dem Hohen Himalaya und dem tiefer liegenden Vorderen Himalaya herrscht ein hohes Erdbebenrisiko im Pokhara Tal. Die Kombination aus hohen Terrassen und tiefen, von schnell fließenden Flüssen ausgespülten Schluchten, machen das Tal zu einem geeigneten Ort, um die kaum untersuchte geologische und geomorphologische Geschichte der in diesem Tal abgelagernten Sedimente zu erforschen. Um Landschaftsveränderungen und -entwicklungen zu verstehen sowie die Reaktion des Flussnetzes auf erhöhte Sedimentzufuhr zu überblicken, ist es unabdingbar, den Ursprung des Materials, die sedimentologischen Prozesse und mögliche Auslöser der Talverfüllung zu analysieren. Daten und Proben aus dem Gelände, die später im Labor datiert, ausgewertet, mit sedimentologischen Aufzeichnungen kombiniert und durch fernerkundliche Methoden ergänzt und analysiert wurden, bilden die Basis der Ergebnisse dieser Dissertation. Da solche massiven, in sehr kurzer Zeit abgelagerten Sedimente auf eine katastrophale Entstehung hindeuten, spielt auch der zeitliche Aspekt eine wichtige Rolle. erschiedene Beweise zeigen, dass mindestens drei Sedimentereignisse das Pokhara Tal verfüllt haben. Ich dokumentiere ein aufschlussreiches Sedimentarchiv, Sedimentabfolgen geochemische Provenienz, Radiokarbonalter und die stratigraphische Beziehung zwischen diesen Ergebnissen. Diese unabhängig voneinander gewonnen Ergebnisse zeigen, dass geomorphologische und sedimentologische Beweise mit den Altersdatierungen konsistent sind und wir mit diesen Untersuchungen die abgelagerten Geröllmassen mit historischen Starkbeben in Verbindung bringen können (~1100, 1255, 1344 AD). Provenienz in Kombination mit den Altersdatierungen lassen uns wiederum die drei Ereignisse in ihren Mächtigkeit unterscheiden und individuel das Volumen bestimmen. Messungen zur Anpassung des Flusssystems ergeben, dass das System noch stark von seinem Gleichgewicht abweicht, da erst 30-70% des über kurze Zeit abgelagerten Materials aus dem Flussbett ausgeräumt wurden. Hierfür benutzte Marker sind unter Anderem volumetrische Berechnungen, Erosionsund Einschneideraten der Flüsse, Bäume in ihrer Wachstumsposition zur Altersdatierung und Stufen im Längsgerinneprofil der Seitenflüsse. Das bis heute abgetragene Volumen ergibt Sedimentaustragsraten von bis zu 4200 t km−2 yr−1 am Fuß des Fächers. Die lithologische Zusammensetzung aktiver Flussbänke in Seitentälern zeigt, dass Material der Formation gegenüber lokalem Grundgestein immer noch dominiert. Dieses lithologische Ungleichgewicht verdeutlicht, wie schnell Sedimentmassen in drei Ereignissen über 70 km talabwärts und bis zu 8 km flussaufwärts (in die Seitentäler) abgelagert wurden. Lokale Einschneideraten in die Pokhara Formation liegen zwischen 0.16-0.22 m yr−1 und weisen auf einen sich schnell verändernden Flussverlauf hin. Um die Landschaftsentwicklung nach solch massiven Sedimentablagerungen analysieren zu können, müssen die Sedimentologie, die geomorphologischen Prozesse, der Ursprung und die Mechanismen der Talverfüllung verstanden und als Basiswissen vorausgesetzt werden. Aus den gewonnen Resultaten schließen wir, dass das Pokhara Tal von mehreren katastrophal aufeinanderfolgenden Naturereignissen in einem Zeitraum von ~200 Jahren seit dem 12. Jahrhundert heimgesucht wurde. Nirgendwo im Himalaya finden wir vergleichbare Talverfüllungen, weder in ihrer Größe, noch in dieser detailliert aufgenommenen geomorphologischen Geschichte und sedimentologischen Aufzeichnungen. Das Pokhara Tals ist damit eine der am besten datierten Talverfüllungen des gesamten Himalaya. Diese Arbeit zeigt, dass in sedimentären Archiven - unabhängig von der Paleoseismologie - historische Starkbeben datiert und erkannt werden können. So hilft das Wissen über den zeitlichen Verlauf der Talverfüllung, die Entwicklung des Fächers und die Anpassung des Flusssystems in Zukunft Entscheidungen zu treffen, die das geomorphologische Risiko für die Stadt Pokhara vermindern und gleichzeitig bauliche Maßnahmen besser an die lokalen Risikofaktoren angepasst werden können. KW - geomorphology KW - geohazards KW - Himalaya KW - radiocarbon age dating KW - Geomorphologie KW - Naturgefahren KW - Himalaya KW - Radiokarbondatierung Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-413341 ER - TY - JOUR A1 - Schwanghart, Wolfgang A1 - Ryan, Marie A1 - Korup, Oliver T1 - Topographic and seismic constraints on the vulnerability of himalayan hydropower JF - Geophysical research letters N2 - Plain Language Summary The 2015 Gorkha earthquake in Nepal caused severe losses in the hydropower sector. The country temporarily lost similar to 20% of its hydropower capacity, and >30 hydropower projects were damaged. The projects hit hardest were those that were affected by earthquake-triggered landslides. We show that these projects are located along very steep rivers with towering sidewalls that are prone to become unstable during strong seismic ground shaking. A statistical classification based on a topographic metric that expresses river steepness and earthquake ground acceleration is able to approximately predict hydropower damage during future earthquakes, based on successful testing of past cases. Thus, our model enables us to estimate earthquake damages to hydropower projects in other parts of the Himalayas. We find that >10% of the Himalayan drainage network may be unsuitable for hydropower infrastructure given high probabilities of high earthquake damages. KW - natural hazards KW - hydropower KW - landslides KW - Himalaya Y1 - 2018 U6 - https://doi.org/10.1029/2018GL079173 SN - 0094-8276 SN - 1944-8007 VL - 45 IS - 17 SP - 8985 EP - 8992 PB - American Geophysical Union CY - Washington ER - TY - JOUR A1 - Scherler, Dirk A1 - Bookhagen, Bodo A1 - Wulf, Hendrik A1 - Preusser, Frank A1 - Strecker, Manfred T1 - Increased late Pleistocene erosion rates during fluvial aggradation in the Garhwal Himalaya, northern India JF - Earth & planetary science letters N2 - The response of surface processes to climatic forcing is fundamental for understanding the impacts of climate change on landscape evolution. In the Himalaya, most large rivers feature prominent fill terraces that record an imbalance between sediment supply and transport capacity, presumably due to past fluctuations in monsoon precipitation and/or effects of glaciation at high elevation. Here, we present volume estimates, chronological constraints, and Be-10-derived paleo-erosion rates from a prominent valley fill in the Yamuna catchment, Garhwal Himalaya, to elucidate the coupled response of rivers and hillslopes to Pleistocene climate change. Although precise age control is complicated due to methodological problems, the new data support formation of the valley fill during the late Pleistocene and its incision during the Holocene. We interpret this timing to indicate that changes in discharge and river-transport capacity were major controls. Compared to the present day, late Pleistocene hillslope erosion rates were higher by a factor of similar to 2-4, but appear to have decreased during valley aggradation. The higher late Pleistocene erosion rates are largely unrelated to glacial erosion and could be explained by enhanced sediment production on steep hillslopes due to increased periglacial activity that declined as temperatures increased. Alternatively, erosion rates that decrease during valley aggradation are also consistent with reduced landsliding from threshold hillslopes as a result of rising base levels. In that case, the similarity of paleo-erosion rates near the end of the aggradation period with modern erosion rates might imply that channels and hillslopes are not yet fully coupled everywhere and that present-day hillslope erosion rates may underrepresent long-term incision rates. (C) 2015 Elsevier B.V. All rights reserved. KW - paleo-erosion rates KW - climate change KW - river terraces KW - landscape evolution KW - hillslopes KW - Himalaya Y1 - 2015 U6 - https://doi.org/10.1016/j.epsl.2015.06.034 SN - 0012-821X SN - 1385-013X VL - 428 SP - 255 EP - 266 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Scherler, Dirk A1 - Bookhagen, Bodo A1 - Strecker, Manfred T1 - Tectonic control on Be-10-derived erosion rates in the Garhwal Himalaya, India JF - Journal of geophysical research : Earth surface N2 - Erosion in the Himalaya is responsible for one of the greatest mass redistributions on Earth and has fueled models of feedback loops between climate and tectonics. Although the general trends of erosion across the Himalaya are reasonably well known, the relative importance of factors controlling erosion is less well constrained. Here we present 25 Be-10-derived catchment-averaged erosion rates from the Yamuna catchment in the Garhwal Himalaya, northern India. Tributary erosion rates range between similar to 0.1 and 0.5mmyr(-1) in the Lesser Himalaya and similar to 1 and 2mmyr(-1) in the High Himalaya, despite uniform hillslope angles. The erosion-rate data correlate with catchment-averaged values of 5 km radius relief, channel steepness indices, and specific stream power but to varying degrees of nonlinearity. Similar nonlinear relationships and coefficients of determination suggest that topographic steepness is the major control on the spatial variability of erosion and that twofold to threefold differences in annual runoff are of minor importance in this area. Instead, the spatial distribution of erosion in the study area is consistent with a tectonic model in which the rock uplift pattern is largely controlled by the shortening rate and the geometry of the Main Himalayan Thrust fault (MHT). Our data support a shallow dip of the MHT underneath the Lesser Himalaya, followed by a midcrustal ramp underneath the High Himalaya, as indicated by geophysical data. Finally, analysis of sample results from larger main stem rivers indicates significant variability of Be-10-derived erosion rates, possibly related to nonproportional sediment supply from different tributaries and incomplete mixing in main stem channels. KW - Himalaya KW - erosion KW - tectonics KW - cosmogenic nuclides KW - channel steepness KW - stream power Y1 - 2014 U6 - https://doi.org/10.1002/2013JF002955 SN - 2169-9003 SN - 2169-9011 VL - 119 IS - 2 SP - 83 EP - 105 PB - American Geophysical Union CY - Washington ER - TY - THES A1 - Scherler, Dirk T1 - Climate variability and glacial dynamics in the Himalaya T1 - Klimavariabilität und Gletscherdynamik im Himalaya N2 - In den Hochgebirgen Asiens bedecken Gletscher eine Fläche von ungefähr 115,000 km² und ergeben damit, neben Grönland und der Antarktis, eine der größten Eisakkumulationen der Erde. Die Sensibilität der Gletscher gegenüber Klimaschwankungen macht sie zu wertvollen paläoklimatischen Archiven in Hochgebirgen, aber gleichzeitig auch anfällig gegenüber rezenter und zukünftiger globaler Erwärmung. Dies kann vor allem in dicht besiedelten Gebieten Süd-, Ost- und Zentralasiens zu großen Problem führen, in denen Gletscher- und Schnee-Schmelzwässer eine wichtige Ressource für Landwirtschaft und Stromerzeugung darstellen. Eine erfolgreiche Prognose des Gletscherverhaltens in Reaktion auf den Klimawandel und die Minderung der sozioökonomischen Auswirkungen erfordert fundierte Kenntnisse der klimatischen Steuerungsfaktoren und der Dynamik asiatischer Gletscher. Aufgrund ihrer Abgeschiedenheit und dem erschwerten Zugang gibt es nur wenige glaziologische Geländestudien, die zudem räumlich und zeitlich sehr begrenzt sind. Daher fehlen bisher grundlegende Informationen über die Mehrzahl asiatischer Gletscher. In dieser Arbeit benutze ich verschiedene Methoden, um die Dynamik asiatischer Gletscher auf mehreren Zeitskalen zu untersuchen. Erstens teste ich eine Methode zur präzisen satelliten-gestützten Messung von Gletscheroberflächen-Geschwindigkeiten. Darauf aufbauend habe ich eine umfassende regionale Erhebung der Fliessgeschwindigkeiten und Frontdynamik asiatischer Gletscher für die Jahre 2000 bis 2008 durchgeführt. Der gewonnene Datensatz erlaubt einmalige Einblicke in die topographischen und klimatischen Steuerungsfaktoren der Gletscherfließgeschwindigkeiten in den Gebirgsregionen Hochasiens. Insbesondere dokumentieren die Daten rezent ungleiches Verhalten der Gletscher im Karakorum und im Himalaja, welches ich auf die konkurrierenden klimatischen Einflüsse der Westwinddrift im Winter und des Indischen Monsuns im Sommer zurückführe. Zweitens untersuche ich, ob klimatisch bedingte Ost-West Unterschiede im Gletscherverhalten auch auf längeren Zeitskalen eine Rolle spielen und gegebenenfalls für dokumentierte regional asynchrone Gletschervorstöße relevant sind. Dazu habe ich mittels kosmogener Nuklide Oberflächenalter von erratischen Blöcken auf Moränen ermittelt und eine glaziale Chronologie für das obere Tons Tal, in den Quellgebieten des Ganges, erstellt. Dieses Gebiet befindet sich in der Übergangszone von monsunaler zu Westwind beeinflusster Feuchtigkeitszufuhr und ist damit ideal gelegen, um die Auswirkungen dieser beiden atmosphärischen Zirkulationssysteme auf Gletschervorstöße zu untersuchen. Die ermittelte glaziale Chronologie dokumentiert mehrere Gletscherschwankungen während des Endstadiums der letzten Pleistozänen Vereisung und während des Holzäns. Diese weisen darauf hin, dass Gletscherschwankungen im westlichen Himalaja weitestgehend synchron waren und auf graduelle glaziale-interglaziale Temperaturveränderungen, überlagert von monsunalen Niederschlagsschwankungen höherer Frequenz, zurück zu führen sind. In einem dritten Schritt kombiniere ich Satelliten-Klimadaten mit Eisfluss-Abschätzungen und topographischen Analysen, um den Einfluss der Gletscher Hochasiens auf die Reliefentwicklung im Hochgebirge zu untersuchen. Die Ergebnisse dokumentieren ausgeprägte meridionale Unterschiede im Grad und im Stil der Vergletscherung und glazialen Erosion in Abhängigkeit von topographischen und klimatischen Faktoren. Gegensätzlich zu bisherigen Annahmen deuten die Daten darauf hin, dass das monsunale Klima im zentralen Himalaja die glaziale Erosion schwächt und durch den Erhalt einer steilen orographischen Barriere das Tibet Plateau vor lateraler Zerschneidung bewahrt. Die Ergebnisse dieser Arbeit dokumentieren, wie klimatische und topographische Gradienten die Gletscherdynamik in den Hochgebirgen Asiens auf Zeitskalen von 10^0 bis 10^6 Jahren beeinflussen. Die Reaktionszeit der Gletscher auf Klimaveränderungen sind eng an Eigenschaften wie Schuttbedeckung und Neigung gekoppelt, welche ihrerseits von den topographischen Verhältnissen bedingt sind. Derartige Einflussfaktoren müssen bei paläoklimatischen Rekonstruktion und Vorhersagen über die Entwicklung asiatischer Gletscher berücksichtigt werden. Desweiteren gehen die regionalen topographischen Unterschiede der vergletscherten Gebiete Asiens teilweise auf klimatische Gradienten und den langfristigen Einfluss der Gletscher auf die topographische Entwicklung des Gebirgssystems zurück. N2 - In the high mountains of Asia, glaciers cover an area of approximately 115,000 km² and constitute one of the largest continental ice accumulations outside Greenland and Antarctica. Their sensitivity to climate change makes them valuable palaeoclimate archives, but also vulnerable to current and predicted Global Warming. This is a pressing problem as snow and glacial melt waters are important sources for agriculture and power supply of densely populated regions in south, east, and central Asia. Successful prediction of the glacial response to climate change in Asia and mitigation of the socioeconomic impacts requires profound knowledge of the climatic controls and the dynamics of Asian glaciers. However, due to their remoteness and difficult accessibility, ground-based studies are rare, as well as temporally and spatially limited. We therefore lack basic information on the vast majority of these glaciers. In this thesis, I employ different methods to assess the dynamics of Asian glaciers on multiple time scales. First, I tested a method for precise satellite-based measurement of glacier-surface velocities and conducted a comprehensive and regional survey of glacial flow and terminus dynamics of Asian glaciers between 2000 and 2008. This novel and unprecedented dataset provides unique insights into the contrasting topographic and climatic controls of glacial flow velocities across the Asian highlands. The data document disparate recent glacial behavior between the Karakoram and the Himalaya, which I attribute to the competing influence of the mid-latitude westerlies during winter and the Indian monsoon during summer. Second, I tested whether such climate-related longitudinal differences in glacial behavior also prevail on longer time scales, and potentially account for observed regionally asynchronous glacial advances. I used cosmogenic nuclide surface exposure dating of erratic boulders on moraines to obtain a glacial chronology for the upper Tons Valley, situated in the headwaters of the Ganges River. This area is located in the transition zone from monsoonal to westerly moisture supply and therefore ideal to examine the influence of these two atmospheric circulation regimes on glacial advances. The new glacial chronology documents multiple glacial oscillations during the last glacial termination and during the Holocene, suggesting largely synchronous glacial changes in the western Himalayan region that are related to gradual glacial-interglacial temperature oscillations with superimposed monsoonal precipitation changes of higher frequency. In a third step, I combine results from short-term satellite-based climate records and surface velocity-derived ice-flux estimates, with topographic analyses to deduce the erosional impact of glaciations on long-term landscape evolution in the Himalayan-Tibetan realm. The results provide evidence for the long-term effects of pronounced east-west differences in glaciation and glacial erosion, depending on climatic and topographic factors. Contrary to common belief the data suggest that monsoonal climate in the central Himalaya weakens glacial erosion at high elevations, helping to maintain a steep southern orographic barrier that protects the Tibetan Plateau from lateral destruction. The results of this thesis highlight how climatic and topographic gradients across the high mountains of Asia affect glacier dynamics on time scales ranging from 10^0 to 10^6 years. Glacial response times to climate changes are tightly linked to properties such as debris cover and surface slope, which are controlled by the topographic setting, and which need to be taken into account when reconstructing mountainous palaeoclimate from glacial histories or assessing the future evolution of Asian glaciers. Conversely, the regional topographic differences of glacial landscapes in Asia are partly controlled by climatic gradients and the long-term influence of glaciers on the topographic evolution of the orogenic system. KW - Gletscher KW - Himalaya KW - Klimawandel KW - Fernerkundung KW - Kosmogene Nuklide KW - Glaciers KW - Himalaya KW - Climate change KW - Remote sensing KW - Cosmogenic nuclides Y1 - 2010 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-49871 ER - TY - JOUR A1 - Rehman, Hafiz Ur A1 - Tanaka, Ryoji A1 - Kobayashi, Katsura A1 - Tsujimori, Tatsuki A1 - Nakamura, Eizo A1 - Yamamoto, Hiroshi A1 - Khan, Tahseenullah A1 - Kaneko, Yoshiyuki T1 - Oxygen isotopes in Indian Plate eclogites (Kaghan Valley, Pakistan): Negative delta O-18 values from a high latitude protolith reset by Himalayan metamorphism JF - Lithos : an international journal of mineralogy, petrology, and geochemistry N2 - Oxygen isotope compositions are reported for the first time for the Himalayan metabasites of the Kaghan Valley, Pakistan in this study. The highest metamorphic grades are recorded in the north of the valley, near the India-Asia collision boundary, in the form of high-pressure (HP: Group I) and ultrahigh-pressure (UHP: Group II) eclogites. The rocks show a step-wise decrease in grade from the UHP to HP eclogites and amphibolites. The protoliths of these metabasites were the Permian Panjal Trap basalts (ca. 267 +/- 2.4 Ma), which were emplaced along the northern margin of India when it was part of Gondwana. After the break-up of Gondwana, India drifted northward, subducted beneath Asia and underwent UHP metamorphism during the Eocene (ca. 45 +/- 1.2 Ma). At the regional scale, amphibolites, Group I and II eclogites yielded delta O-18 values of +5.84 and +5.91 parts per thousand, +1.66 to +424 parts per thousand, and -2.25 to +0.76 parts per thousand, respectively, relative to VSMOW. On a more local scale, within a single eclogite body, the delta O-18 values were the lowest (-2.25 to-1.44%.) in the central, the best preserved (least retrograded) parts, and show a systematic increase outward into more retrograded rocks, reaching up to +0.12 parts per thousand. These values are significantly lower than the typical mantle values for basalts of + 5.7 +/- 0.3 parts per thousand. The unusually low or negative delta O-18 values in Group II eclogites potentially resulted from hydrothermal alteration of the protoliths by interactions with meteoric water when the Indian plate was at southern high latitudes (similar to 60 degrees S). The stepwise increase in delta O-18 values, among different eclogite bodies in general and at single outcrop-scales in particular, reflects differing degrees of resetting of the oxygen isotope compositions during exhumation-related retrogression. (C) 2014 Elsevier B.V. All rights reserved. KW - Himalaya KW - Kaghan KW - UHP eclogites KW - Oxygen isotope compositions KW - Laser fluorination Y1 - 2014 U6 - https://doi.org/10.1016/j.lithos.2014.09.007 SN - 0024-4937 SN - 1872-6143 VL - 208 SP - 471 EP - 483 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Rehman, Hafiz Ur A1 - Lee, Hao-Yang A1 - Chung, Sun-Lin A1 - Khan, Tahseenullah A1 - Yamamoto, Hiroshi O´Brien T1 - Source and mode of the Permian Panjal Trap magmatism: Evidence from zircon U-Pb and Hf isotopes and trace element data from the Himalayan ultrahigh-pressure rocks JF - Lithos : an international journal of mineralogy, petrology, and geochemistry N2 - We present an integrated study of LA-ICP-MS U-Pb age, Hf isotopes, and trace element geochemistry of zircons from the Himalayan eclogites (mafic rocks) and their host gneisses (felsic rocks) from the Kaghan Valley in Pakistan in order to understand the source and mode of their magmatic protoliths and the effect of metamorphism. Zircons from the so-called Group I (high-pressure) eclogites yielded U-Pb mean ages of 259 +/- 10 Ma (MSWD = 0.74), whereas those of Group II (ultrahigh-pressure) eclogites yielded 48 3 Ma (MSWD = 0.71). In felsic gneisses the central or core domains of zircons yielded ages similar to those from Group I edogites but zircon overgrowth domains yielded 47 +/- 1 Ma (MSWD = 1.9). Trace element data suggest a magmatic origin for Group I-derived (having Th/U ratios: >0.5) and metamorphic origin for Group II -derived (Th/U < 0.07) zircons, respectively. Zircon Hf isotope data, obtained from the same dated spots, show positive initial Hf-176/Hf-177 isotopic ratios referred to as "epsilon(Hf)(t)" of around +10 in Group I eclogites; +7 in Group II eclogites; and +8 in felsic gneisses zircons, respectively, thus indicate a juvenile mantle source for the protolith rocks (Panjal Traps) with almost no contribution from the ancient crustal material. The similar epsilon(Hf)(t) values, identical protolith ages and trace element compositions of zircons in felsic (granites or rhyolites) and mafic (basalt and dolerite) rocks attest to a bimodal magmatism accounting for the Panjal Traps during the Permian. Later, during India-Asia collision in Eocene times, both the felsic and mafic lithologies were subducted to mantle-depths (>90 km; coesite-stable) and experienced ultrahigh-pressure metamorphism before their final exhumation. (C) 2016 Elsevier B.V. All rights reserved. KW - Himalaya KW - Panjal Traps KW - UHP edogites and felsic gneisses KW - Zircon U-Pb age KW - Hf isotopes KW - Trace element geochemistry Y1 - 2016 U6 - https://doi.org/10.1016/j.lithos.2016.06.001 SN - 0024-4937 SN - 1872-6143 VL - 260 SP - 286 EP - 299 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Regmi, Shakil A1 - Bookhagen, Bodo T1 - The spatial pattern of extreme precipitation from 40 years of gauge data in the central Himalaya JF - Weather and climate extremes N2 - The topography of the Himalaya exerts a substantial control on the spatial distribution of monsoonal rainfall, which is a vital water source for the regional economy and population. But the occurrence of short-lived and high-intensity precipitation results in socio-economic losses. This study relies on 40 years of daily data from 204 ground stations in Nepal to derive extreme precipitation thresholds, amounts, and days at the 95th percentile. We additionally determine the precipitation magnitude-frequency relation. We observe that extreme precipitation amounts follow an almost uniform band parallel to topographic contour lines in the southern Himalaya mountains in central and eastern Nepal but not in western Nepal. The relationship of extreme precipitation indices with topographic relief shows that extreme precipitation thresholds decrease with increasing elevation, but extreme precipitation days increase in higher elevation areas. Furthermore, stations above 1 km elevation exhibit a power-law relation in the rainfall magnitude-frequency framework. Stations at higher elevations generally have lower values of power-law exponents than low elevation areas. This suggests a fundamentally different behaviour of the rainfall distribution and an increased occurrence of extreme rainfall storms in the high elevation areas of Nepal. KW - Himalaya KW - Nepal KW - Indian summer monsoon KW - Precipitation KW - Extreme KW - precipitation Y1 - 2022 U6 - https://doi.org/10.1016/j.wace.2022.100470 SN - 2212-0947 VL - 37 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Olen, Stephanie M. A1 - Bookhagen, Bodo A1 - Strecker, Manfred T1 - Role of climate and vegetation density in modulating denudation rates in the Himalaya JF - Earth & planetary science letters N2 - Vegetation has long been hypothesized to influence the nature and rates of surface processes. We test the possible impact of vegetation and climate on denudation rates at orogen scale by taking advantage of a pronounced along-strike gradient in rainfall and vegetation density in the Himalaya. We combine 12 new Be-10 denudation rates from the Sutlej Valley and 123 published denudation rates from fluvially-dominated catchments in the Himalaya with remotely-sensed measures of vegetation density and rainfall metrics, and with tectonic and lithologic constraints. In addition, we perform topographic analyses to assess the contribution of vegetation and climate in modulating denudation rates along strike. We observe variations in denudation rates and the relationship between denudation and topography along strike that are most strongly controlled by local rainfall amount and vegetation density, and cannot be explained by along-strike differences in tectonics or lithology. A W-E along-strike decrease in denudation rate variability positively correlates with the seasonality of vegetation density (R = 0.95, p < 0.05), and negatively correlates with mean vegetation density (R = -0.84, p < 0.05). Vegetation density modulates the topographic response to changing denudation rates, such that the functional relationship between denudation rate and topographic steepness becomes increasingly linear as vegetation density increases. We suggest that while tectonic processes locally control the pattern of denudation rates across strike of the Himalaya (i.e., S-N), along strike of the orogen (i.e., E-W) climate exerts a measurable influence on how denudation rates scatter around long-term, tectonically-controlled erosion, and on the functional relationship between topography and denudation. (C) 2016 Elsevier B.V. All rights reserved. KW - geomorphology KW - erosion KW - vegetation KW - rainfall KW - Himalaya KW - 10-Be terrestrial cosmogenic nuclides Y1 - 2016 U6 - https://doi.org/10.1016/j.epsl.2016.03.047 SN - 0012-821X SN - 1385-013X VL - 445 SP - 57 EP - 67 PB - Elsevier CY - Amsterdam ER - TY - THES A1 - Olen, Stephanie M. T1 - Understanding Himalayan denudation at the catchment and orogen scale T1 - Verständnis von Denudation auf regionalem und orogenem Maßstab im Himalaja N2 - Understanding the rates and processes of denudation is key to unraveling the dynamic processes that shape active orogens. This includes decoding the roles of tectonic and climate-driven processes in the long-term evolution of high- mountain landscapes in regions with pronounced tectonic activity and steep climatic and surface-process gradients. Well-constrained denudation rates can be used to address a wide range of geologic problems. In steady-state landscapes, denudation rates are argued to be proportional to tectonic or isostatic uplift rates and provide valuable insight into the tectonic regimes underlying surface denudation. The use of denudation rates based on terrestrial cosmogenic nuclide (TCN) such as 10Beryllium has become a widely-used method to quantify catchment-mean denudation rates. Because such measurements are averaged over timescales of 102 to 105 years, they are not as susceptible to stochastic changes as shorter-term denudation rate estimates (e.g., from suspended sediment measurements) and are therefore considered more reliable for a comparison to long-term processes that operate on geologic timescales. However, the impact of various climatic, biotic, and surface processes on 10Be concentrations and the resultant denudation rates remains unclear and is subject to ongoing discussion. In this thesis, I explore the interaction of climate, the biosphere, topography, and geology in forcing and modulating denudation rates on catchment to orogen scales. There are many processes in highly dynamic active orogens that may effect 10Be concentrations in modern river sands and therefore impact 10Be-derived denudation rates. The calculation of denudation rates from 10Be concentrations, however, requires a suite of simplifying assumptions that may not be valid or applicable in many orogens. I investigate how these processes affect 10Be concentrations in the Arun Valley of Eastern Nepal using 34 new 10Be measurements from the main stem Arun River and its tributaries. The Arun Valley is characterized by steep gradients in climate and topography, with elevations ranging from <100 m asl in the foreland basin to >8,000 asl in the high sectors to the north. This is coupled with a five-fold increase in mean annual rainfall across strike of the orogen. Denudation rates from tributary samples increase toward the core of the orogen, from <0.2 to >5 mm/yr from the Lesser to Higher Himalaya. Very high denudation rates (>2 mm/yr), however, are likely the result of 10Be TCN dilution by surface and climatic processes, such as large landsliding and glaciation, and thus may not be representative of long-term denudation rates. Mainstem Arun denudation rates increase downstream from ~0.2 mm/yr at the border with Tibet to 0.91 mm/yr at its outlet into the Sapt Kosi. However, the downstream 10Be concentrations may not be representative of the entire upstream catchment. Instead, I document evidence for downstream fining of grains from the Tibetan Plateau, resulting in an order-of-magnitude apparent decrease in the measured 10Be concentration. In the Arun Valley and across the Himalaya, topography, climate, and vegetation are strongly interrelated. The observed increase in denudation rates at the transition from the Lesser to Higher Himalaya corresponds to abrupt increases in elevation, hillslope gradient, and mean annual rainfall. Thus, across strike (N-S), it is difficult to decipher the potential impacts of climate and vegetation cover on denudation rates. To further evaluate these relationships I instead took advantage of an along-strike west-to-east increase of mean annual rainfall and vegetation density in the Himalaya. An analysis of 136 published 10Be denudation rates from along strike of the revealed that median denudation rates do not vary considerably along strike of the Himalaya, ~1500 km E-W. However, the range of denudation rates generally decreases from west to east, with more variable denudation rates in the northwestern regions of the orogen than in the eastern regions. This denudation rate variability decreases as vegetation density increases (R=- 0.90), and increases proportionately to the annual seasonality of vegetation (R=0.99). Moreover, rainfall and vegetation modulate the relationship between topographic steepness and denudation rates such that in the wet, densely vegetated regions of the Himalaya, topography responds more linearly to changes in denudation rates than in dry, sparsely vegetated regions, where the response of topographic steepness to denudation rates is highly nonlinear. Understanding the relationships between denudation rates, topography, and climate is also critical for interpreting sedimentary archives. However, there is a lack of understanding of how terrestrial organic matter is transported out of orogens and into sedimentary archives. Plant wax lipid biomarkers derived from terrestrial and marine sedimentary records are commonly used as paleo- hydrologic proxy to help elucidate these problems. I address the issue of how to interpret the biomarker record by using the plant wax isotopic composition of modern suspended and riverbank organic matter to identify and quantify organic matter source regions in the Arun Valley. Topographic and geomorphic analysis, provided by the 10Be catchment-mean denudation rates, reveals that a combination of topographic steepness (as a proxy for denudation) and vegetation density is required to capture organic matter sourcing in the Arun River. My studies highlight the importance of a rigorous and careful interpretation of denudation rates in tectonically active orogens that are furthermore characterized by strong climatic and biotic gradients. Unambiguous information about these issues is critical for correctly decoding and interpreting the possible tectonic and climatic forces that drive erosion and denudation, and the manifestation of the erosion products in sedimentary archives. N2 - Schlüssel im Verständnis der dynamischen Prozesse in aktiven Orogenen ist die Kenntnis der Abtragungsraten und -prozesse. Eine breite Auswahl geologischer Fragen können mit well-constrained Abtragungsraten erörtert werden. Sind Landschaften im Gleichgewicht so sind die Denudationsraten proportional zu den tektonischen und isostatischen Hebungsraten und geben somit wichtige Hinweise über die tektonischen Eigenschaften der Region. Eine weit verbreitete und etablierte Methode zur Bestimmung mittlerer Denudationsraten eines bestimmten Einzugsgebietes ist Beryllium-10, ein terrestrisches kosmogenes Nuklid (10Be TCN). 10Be TCN Messungen stellen durchschnittliche Abtragungsraten über einen Zeitraum von 10^2 – 10^5 Jahren dar und sind daher weniger verletzlich gegenüber stochastischen Änderungen wie Erosionsraten, die über einen kurzen Zeitraum ermittelt werden z.B. in Suspension. Sie sind daher zuverlässig einsetzbar um langfristige Prozesse zu vergleichen. Allerdings ist unklar welche Einfluss verschiedene klimatische, biologische oder erdoberflächen Prozesse auf die 10Be Konzentration ausüben und somit auch auf die resultierenden Abtragungsraten. In dieser Doktorarbeit, setze ich mich mit dem Zwischenspiel von Klima, Biosphäre, Topographie und Geologie auseinander und dem Einfluss, den sie auf Abtragungsraten ausüben sowohl auf regionalem wie auch auf orogenem Maßstab. In hoch dynamischen aktiven Gebirgen gibt es viele Prozesse, welche die 10Be Konzentration in heutigen Flusssanden beeinflussen und damit auch die, mittels 10Be berechneten, Abtragungsraten. Um diese Raten mittels 10Be Konzentrationen zu berechnen benötigen wir einige vereinfachende Annahmen, die möglicherweise in anderen Regionen keine Gültigkeit haben. Ich untersuche den Einfluss dieser Prozesse auf die 10Be Konzentration. Dazu haben wir im Arun Tal im Osten Nepals 34 neue 10Be Konzentrationen des Arun Flusses und seinen Zuflüssen untersucht. Charakteristisch für das Arun Tal sind die steilen Gradienten im Klima mit einem fünffachen Anstieg des mittleren jährlichen Regenfalls über das Orogens, und in der Topographie mit Höhen von weniger als 100 m über Meer im Vorlandbecken bis über 8000 m über Meer im Gebirge. Die Abtragungsraten der Proben der Zuflüsse nehmen gegen das Zentrum des Gebirges von weniger <0.2 zu mehr als >5 mm/yr zu d.h. ansteigend vom Lesser zum Higher Himalaya. Sehr hohe Denudationsraten (> 2mm/yr) können durch erdoberflächen und klimatische Prozesse verwässert werden z. B. grosse Erdrutsche und Vergletscherungen, und sind daher nicht unbedingt repräsentativ für langzeitliche Abtragungsraten. Im Arun nehmen die Raten des Hauptflusses flussabwärts von 0.2 mm/yr im Bereich der Grenze zu Tibet auf 0.91 mm/yr am Ausfluss in Sapt Kosi zu. Es ist möglich, dass diese 10Be Konzentrationen nicht das vollständige flussauswärtsliegende Einzugsgebiet repräsentieren. Stattdessen lege ich dar wie sich die Korngrösse ab dem tibetischen Plateau verfeinert und dazu führt, dass die 10Be Konzentrationen offenkundig im Bereich einer Grössenordnung abnehmen. Im Arun Tal und sowie über den ganzen Himalaja sind Topographie, Klima und Vegetation sehr stark miteinander verbunden. Das Ansteigen der Denudationsraten im Übergang vom Lesser zum Higher Himalaya stimmt mit dem abrupten Ansteigen der Höhe, des Hangneigungsgradienten und des mittleren jährlichen Regenfalles überein. Es ist schwierig die möglichen Einflüssen von Klima und der Vegetationsdichte auf die Abtragungsraten über das Orogen hinweg (N-S) zu entziffern. Stattdessen, nutzen wir den Vorteil der, von West nach Ost, parallel zum Himalaja verlaufenden, Zunahme des mittleren jährlichen Regenfalles und der Vegetationsdichte. Eine Analyse 136 publizierter 10Be TCN Abtragungsraten entlang des Gebirges, zeigt dass die im Streichen liegenden mittleren Denudationsraten (ca. 1500 km Ost-West) nicht deutlich variieren. Generell sinkt die Wertebereich der Denudationsraten vom Westen gegen Osten, wobei in den nordwestlichen Regionen des Himalajas variablere Abtragungsraten vorherrschen als in den östlichen Regionen. Diese Vielfalt in den Denudationsraten sinkt mit steigender Vegetationsdichte (R=-0.90) und steigt proportional zur (jährlichen) Saisonalität der Vegetation (R=0.99). Vielmehr noch wird das Verhältnis zwischen der topographischen Steilheit und den Abtragungsraten durch Regen und Vegetation beeinflusst z. B. in feuchten Gebieten mit starker Vegetation reagiert die Topographie linearer auf Wechsel in den Abtragungsraten als in trockenen, kaum bewachsenen Regionen, wo die Reaktion der topographischen Steilheit auf die Denudationsraten äusserst nicht-linear ist. Das Verständnis der Beziehung zwischen Erosion, Topographie und Klima ist auch entscheidend für die Interpretation von Sedimentarchiven. Unser Wissen über die Repräsentativität von terrestrisches organisches Material, abgelagert in z.B. Flussdeltas, für die Einzugsgebiete der entsprechenden Flüsse, ist nach wie vor nur vage. Dennoch sind Blattwachse höherer Landpflanzen, extrahiert aus terrestrischen und marinen Sedimenten, ein häufig verwendeter paläohydrologischer Proxy. Im Rahmen dieser Arbeit nutzen wir die Isotopenzusammensetzung von Pflanzenwachsen aus Suspensionsmaterial und aus Flusssedimenten als Herkunftsmarker und zur Quantifizierung des organischen Materials im Arun Tal. Die Analyse von Vegetationsdichte und Regenverteilung in Kombination mit Abtragungsraten des Einzugsgebietes, welche durch die mittleren 10Be-Erosionsraten gestützt werden, zeigen, dass das Vorhandensein dichter Vegetation ein zwar notwendiges, aber nicht hinreichendes Kriterium für hohen OM-Export ist. Vielmehr können wir zeigen, dass nur eine Kombination aus dichter Vegetationsdecke und Erosion zu hohem OM-Export führt. Für die Interpretation entspechender Archive bedeutet das, dass sie im Wesentlichen jene Bereiche des Einzugsgebietes repräsentieren, welche durch hohe Pflanzendichte und starke Erosion charakterisiert sind. Diese Studien belegen wie wichtig es ist die Abtragungsraten in aktiven Gebirgen umfassend zu verstehen. Für die Interpretation kann dieses Verständnis der möglichen tektonischen und klimatischen Gewalten, welche Erosion und Abtragung steuern, und auch das Verständnis der Sedimentarchive aus den Gebirgen stammend, entscheidend sein. KW - geology KW - geomorphology KW - Himalaya KW - Geologie KW - Geomorphologie KW - Himalaja Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-91423 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 - TY - THES A1 - Menges, Johanna T1 - Organic Carbon Storage, Transfer and Transformation in the Himalaya BT - insights from the Kali Gandaki Valley in Central Nepal N2 - The transfer of particulate organic carbon from continents to the ocean is an important component of the global carbon cycle. Transfer to and burial of photosynthetically fixed biospheric organic carbon in marine sediments can effectively sequester atmospheric carbon dioxide over geological timescales. The exhumation and erosion of fossil organic carbon contained in sedimentary rocks, i.e. petrogenic carbon, can result in remineralization, releasing carbon to the atmosphere. In contrast, eroded petrogenic organic carbon that gets transferred back to the ocean and reburied does not affect atmospheric carbon content. Mountain ranges play a key role in this transfer since they can source vast amounts of sediment including particulate organic carbon. Globally, the export of both, biospheric and petrogenic organic carbon has been linked to sediment export. Additionally, short transfer times from mountains to the ocean and high sediment concentrations have been shown to increase the likelihood of organic carbon burial. While the importance of mountain ranges in the organic carbon cycle is now widely recognized, the processes acting within mountain ranges to influence the storage, cycling and mobilization of organic carbon, as well as carbon fluxes from mountain ranges remain poorly constrained. In this thesis, I employ different methods to assess the nature and fate of particulate organic carbon in mountain belts, ranging from the molecular to regional landscape scale. These studies are located along the Trans-Himalayan Kali Gandaki River in Central Nepal. This river traverses all major geological and climatic zones of the Himalaya, from the dry northern Tibetan plateau to the high-relief, monsoon dominated steep High Himalaya and the lower relief and abundant vegetation of the Lesser Himalayan region. First, I document how biospheric organic matter has accumulated during the Holocene in the headwaters of the Kali Gandaki River valley, by combining compound specific isotope measurements with different dating methods and grain size data, and investigate the stability of this organic carbon reservoir on millennial timescales. I show, that around 1.6 ka an eco-geomorphic tipping point occurred leading to a destabilization of the landscape resulting in today’s high erosion rates and the excavation of the aged organic carbon reservoir. This study highlights the climatic and geomorphic controls on biospheric organic carbon storage and release from mountain ranges. Second, I systematically investigate the spatial variation of particulate organic carbon fluxes across the Himalaya along the Kali Gandaki River, using bulk stable and radioactive isotopes combined with a new Bayesian modeling approach. The detailed dataset allows the distinction of aged and modern biospheric organic carbon as well as petrogenic organic carbon across the Himalayan mountain range and the investigation of the role of climatic and geomorphic factors in their riverine export. The data suggest a decoupling of the particulate organic carbon from the sediment yield along the Kali Gandaki River, partially driven by climatic and geomorphic processes. In contrast to the suspended sediment, a large part of the particulate organic carbon exported by the river originates from the Tibetan part of the catchment and is dominated by petrogenic organic carbon derived from Jurassic shales with only minor contributions of modern and aged biospheric organic carbon. These findings emphasize the importance of organic carbon source distribution and erosion mechanisms in determining the organic carbon export from mountain ranges. In a third step, I explore the potential of ultra-high resolution mass spectrometry for particulate organic carbon transport studies. I have generated a novel and unprecedented high-resolution molecular dataset, which contains up to 103 molecular formulas of the lipid fraction of particulate organic matter for modern and aged biospheric carbon, petrogenic organic carbon and river sediments. First, I test if this dataset can be used to better resolve different organic carbon sources and to identify new geochemical tracers. Using multivariate statistics, I identify up to 10² characteristic molecular formulas for the major organic carbon sources in the upper part of the Kali Gandaki catchment, and trace their transfer from the surrounding landscape into the river sediment. Second, I test the potential of the molecular dataset to trace molecular transformations along source-to-sink pathways. I identify changes in molecular metrics derived from the dataset, which are characteristic of transformation processes during incorporation of litter into soil, the aging of soil material, and the mobilization of the organic carbon into the river. These two studies demonstrate that high-resolution molecular datasets open a promising analytical window on particulate organic carbon and can provide novel insights into the composition, sourcing and transformation of riverine particulate organic carbon. Collectively, these studies advance our understanding of the processes contributing to the storage and mobilization of organic carbon in the Central Himalaya, the mountain belt that dominates global erosional fluxes. They do so by identifying the major sources of particulate organic carbon to the Trans-Himalayan Kali Gandaki River, by elucidating their sensitivity to climate and geomorphic processes, and by identifying some of the transformations of this material on the molecular scale. As a result, the thesis demonstrates that the amount and composition of organic carbon routed from mountain belts is a function of the dynamic interactions of geologic, biologic, geomorphic and climatic processes within the mountain belt. This understanding will ultimately help in answering whether the build-up and erosion of mountain ranges over geological time represents a net carbon source or sink to the atmosphere. Beyond this, the thesis contributes to our technical ability to characterize organic matter and attribute it to sources by scoping the potential of high-end molecular analysis. KW - organic carbon cycle KW - biomarker KW - isotopes KW - Himalaya KW - rivers Y1 - 2020 ER - TY - JOUR A1 - Meese, Bernd A1 - Bookhagen, Bodo A1 - Olen, Stephanie M. A1 - Barthold, Frauke Katrin A1 - Sachse, Dirk T1 - The effect of Indian Summer Monsoon rainfall on surface water delta D values in the central Himalaya JF - Hydrological processes N2 - Stable isotope proxy records, such as speleothems, plant-wax biomarker records, and ice cores, are suitable archives for the reconstruction of regional palaeohydrologic conditions. But the interpretation of these records in the tropics, especially in the Indian Summer Monsoon (ISM) domain, is difficult due to differing moisture and water sources: precipitation from the ISM and Winter Westerlies, as well as snow- and glacial meltwater. In this study, we use interannual differences in ISM strength (2011-2012) to understand the stable isotopic composition of surface water in the Arun River catchment in eastern Nepal. We sampled main stem and tributary water (n = 204) for stable hydrogen and oxygen isotope analysis in the postmonsoon phase of two subsequent years with significantly distinct ISM intensities. In addition to the 2011/2012 sampling campaigns, we collected a 12-month time series of main stem waters (2012/2013, n = 105) in order to better quantify seasonal effects on the variability of surface water delta O-18/delta D. Furthermore, remotely sensed satellite data of rainfall, snow cover, glacial coverage, and evapotranspiration was evaluated. The comparison of datasets from both years revealed that surface waters of the main stem Arun and its tributaries were D-enriched by similar to 15 parts per thousand when ISM rainfall decreased by 20%. This strong response emphasizes the importance of the ISM for surface water run-off in the central Himalaya. However, further spatio-temporal analysis of remote sensing data in combination with stream water d-excess revealed that most high-altitude tributaries and the Tibetan part of the Arun receive high portions of glacial melt water and likely Winter Westerly Disturbances precipitation. We make the following two implications: First, palaeohydrologic archives found in high-altitude tributaries and on the southern Tibetan Plateau record a mixture of past precipitation delta D values and variable amounts of additional water sources. Second, surface water isotope ratios of lower elevated tributaries strongly reflect the isotopic composition of ISM rainfall implying a suitable region for the analysis of potential delta D value proxy records. KW - Himalaya KW - palaeoclimate records KW - snow melt KW - stream water KW - water isotopes Y1 - 2018 U6 - https://doi.org/10.1002/hyp.13281 SN - 0885-6087 SN - 1099-1085 VL - 32 IS - 24 SP - 3662 EP - 3674 PB - Wiley CY - Hoboken ER - TY - JOUR A1 - Govin, Gwladys A1 - Najman, Yani A1 - Dupont-Nivet, Guillaume A1 - Millar, Ian A1 - van der Beek, Peter A1 - Huyghe, Pascale A1 - Mark, Chris A1 - Vogeli, Natalie T1 - The tectonics and paleo-drainage of the easternmost Himalaya (Arunachal Pradesh, India) recorded in the Siwalik rocks of the foreland basin JF - American Journal of Science N2 - The Siwalik sedimentary rocks of the Himalayan foreland basin preserve a record of Himalayan orogenesis, paleo-drainage evolution, and erosion. This study focuses on the still poorly studied easternmost Himalaya Siwalik record located directly downstream of the Namche Barwa syntaxis. We use luminescence, palaeomagnetism, magnetostratigraphy, and apatite fission-track dating to constrain the depositional ages of three Siwalik sequences: the Sibo outcrop (Upper Siwalik sediments at ca. 200-800 ka), the Remi section (Middle and Upper Siwalik rocks at >0.8-<8.8 +/- 2.4 Ma), and the Siang section (Middle Siwalik rocks at <9.3 +/- 1.5 to <13.5 +/- 1.5 Ma). Cretaceous-Paleogene detrital zircon and apatite U-Pb ages, characteristic of the Transhimalayan Gangdese Batholiths that crop out northwest of the syntaxis, are present throughout the Sibo, Remi, and Siang successions, confirming the existence of a Yarlung-Brahmaputra connection since at least the Late Miocene. A ca. 500 Ma zircon population increases up section, most strikingly sometime between 3.6 to 6.6 Ma, at the expense of Transhimalayan grains. We consider the ca. 500 Ma population to be derived from the Tethyan or Greater Himalaya, and we interpret the up-section increase to reflect progressive exhumation of the Namche Barwa syntaxis. Early Cretaceous zircon and apatite U-Pb ages are rare in the Sibo, Remi, and Siang successions, but abundant in modern Siang River sediments. Zircons of this age range are characteristic of the Transhimalayan Bomi-Chayu batholiths, which crop out east of the syntaxis and are eroded by the Parlung River, a modern tributary of the Siang River. We interpret the difference in relative abundance of Early Cretaceous zircons between the modern and ancient sediments to reflect capture of the Parlung by the Siang after 800 ka. KW - Himalaya KW - Siwaliks KW - Namche Barwa syntaxis KW - Brahmaputra River KW - Parlung River KW - detrital geochronology and thermochronology Y1 - 2018 U6 - https://doi.org/10.2475/07.2018.02 SN - 0002-9599 SN - 1945-452X VL - 318 IS - 7 SP - 764 EP - 798 PB - Kline Geology Laboratory, Yale University CY - New Haven ER - TY - THES A1 - Ghani, Humaad T1 - Structural evolution of the Kohat and Potwar fold and thrust belts of Pakistan T1 - Strukturelle Entwicklung des Kohat und Potwar Falten- und Überschiebungsgürtel in Pakistan N2 - Fold and thrust belts are characteristic features of collisional orogen that grow laterally through time by deforming the upper crust in response to stresses caused by convergence. The deformation propagation in the upper crust is accommodated by shortening along major folds and thrusts. The formation of these structures is influenced by the mechanical strength of décollements, basement architecture, presence of preexisting structures and taper of the wedge. These factors control not only the sequence of deformation but also cause differences in the structural style. The Himalayan fold and thrust belt exhibits significant differences in the structural style from east to west. The external zone of the Himalayan fold and thrust belt, also called the Subhimalaya, has been extensively studied to understand the temporal development and differences in the structural style in Bhutan, Nepal and India; however, the Subhimalaya in Pakistan remains poorly studied. The Kohat and Potwar fold and thrust belts (herein called Kohat and Potwar) represent the Subhimalaya in Pakistan. The Main Boundary Thrust (MBT) marks the northern boundary of both Kohat and Potwar, showing that these belts are genetically linked to foreland-vergent deformation within the Himalayan orogen, despite the pronounced contrast in structural style. This contrast becomes more pronounced toward south, where the active strike-slip Kalabagh Fault Zone links with the Kohat and Potwar range fronts, known as the Surghar Range and the Salt Range, respectively. The Surghar and Salt Ranges developed above the Surghar Thrust (SGT) and Main Frontal Thrust (MFT). In order to understand the structural style and spatiotemporal development of the major structures in Kohat and Potwar, I have used structural modeling and low temperature thermochronolgy methods in this study. The structural modeling is based on construction of balanced cross-sections by integrating surface geology, seismic reflection profiles and well data. In order to constrain the timing and magnitude of exhumation, I used apatite (U-Th-Sm)/He (AHe) and apatite fission track (AFT) dating. The results obtained from both methods are combined to document the Paleozoic to Recent history of Kohat and Potwar. The results of this research suggest two major events in the deformation history. The first major deformation event is related to Late Paleozoic rifting associated with the development of the Neo-Tethys Ocean. The second major deformation event is related to the Late Miocene to Pliocene development of the Himalayan fold and thrust belt in the Kohat and Potwar. The Late Paleozoic rifting is deciphered by inverse thermal modelling of detrital AFT and AHe ages from the Salt Range. The process of rifting in this area created normal faulting that resulted in the exhumation/erosion of Early to Middle Paleozoic strata, forming a major unconformity between Cambrian and Permian strata that is exposed today in the Salt Range. The normal faults formed in Late Paleozoic time played an important role in localizing the Miocene-Pliocene deformation in this area. The combination of structural reconstructions and thermochronologic data suggest that deformation initiated at 15±2 Ma on the SGT ramp in the southern part of Kohat. The early movement on the SGT accreted the foreland into the Kohat deforming wedge, forming the range front. The development of the MBT at 12±2 Ma formed the northern boundary of Kohat and Potwar. Deformation propagated south of the MBT in the Kohat on double décollements and in the Potwar on a single basal décollement. The double décollement in the Kohat adopted an active roof-thrust deformation style that resulted in the disharmonic structural style in the upper and lower parts of the stratigraphic section. Incremental shortening resulted in the development of duplexes in the subsurface between two décollements and imbrication above the roof thrust. Tectonic thickening caused by duplexes resulted in cooling and exhumation above the roof thrust by removal of a thick sequence of molasse strata. The structural modelling shows that the ramps on which duplexes formed in Kohat continue as tip lines of fault propagation folds in the Potwar. The absence of a double décollement in the Potwar resulted in the preservation of a thick sequence of molasse strata there. The temporal data suggest that deformation propagated in-sequence from ~ 8 to 3 Ma in the northern part of Kohat and Potwar; however, internal deformation in the Kohat was more intense, probably required for maintaining a critical taper after a significant load was removed above the upper décollement. In the southern part of Potwar, a steeper basement slope (β≥3°) and the presence of salt at the base of the stratigraphic section allowed for the complete preservation of the stratigraphic wedge, showcased by very little internal deformation. Activation of the MFT at ~4 Ma allowed the Salt Range to become the range front of the Potwar. The removal of a large amount of molasse strata above the MFT ramp enhanced the role of salt in shaping the structural style of the Salt Range and Kalabagh Fault Zone. Salt accumulation and migration resulted in the formation of normal faults in both areas. Salt migration in the Kalabagh fault zone has triggered out-of-sequence movement on ramps in the Kohat. The amount of shortening calculated between the MBT and the SGT in Kohat is 75±5 km and between the MBT and the MFT in Potwar is 65±5 km. A comparable amount of shortening is accommodated in the Kohat and Potwar despite their different widths: 70 km Kohat and 150 km Potwar. In summary, this research suggests that deformation switched between different structures during the last ~15 Ma through different modes of fault propagation, resulting in different structural styles and the out-of-sequence development of Kohat and Potwar. N2 - Falten- und Überschiebungsgürtel sind charakteristische Merkmale von Kollisionsorogenen, die sich im Laufe der Zeit als Reaktion auf konvergente Spannungen in das Vorland vorbauen. Die Deformationsausbreitung in der oberen Kruste erfolgt durch die Verkürzung entlang von Falten und Überschiebungen. Die Bildung dieser Strukturen wird durch die mechanische Eigenschaft des Décollements (Abscherhorizonts), dem Aufbau des Grundgebirges, der strukturellen Vorprägung und der Geometrie des Verfomungskeils beeinflusst. Diese Faktoren steuern nicht nur die Verformungsabfolge, sondern führen auch zu unterschiedlichen Strukturen im Falten- und Überschiebungsgürtel. Der Himalaya Falten- und Überschiebungsgürtel zeigt signifikante Unterschiede im strukturellen Bau von Ost nach West. Die äußere Zone des Himalaya Falten- und Überschiebungsgürtel, auch Subhimalaya genannt, ist hinsichtlich der zeitliche Entwicklung und des strukturellen Baus in der Region von Bhutan, Nepal und Indien gut untersucht. Im Gegensatz dazu ist die Geologie des pakistanischen Subhimalayas erst in groben Zügen verstanden. Der Kohat- und der Potwar- Falten- und Überschiebungsgürtel (im Folgenden einfach Kohat und Potwar genannt) sind Teil der externe Sedimentationszone des Himalaya- Falten- und Überschiebungsgürtel in Pakistan. Die „Main Boundary Thrust“ (MBT) markiert ihre nördliche Grenze und zeigt, dass beide, sowohl Kohat als auch Potwar, trotz ihres unterschiedlichen strukturellen Baus durch eine gemeinsame, ins Vorland gerichteten Verformung des Himalaya-Orogens entstanden sind. Der Kontrast im strukturelle Bau wird nach Süden ausgeprägter, wo die aktive Kalabagh Seitenverschiebung die frontalen Deformationszonen Kohats und Potwars verbindet, die als „Surghar Range“ bzw. „Salt Range“ bekannt sind. Die „Surghar Range“ und die „Salt Range“ entwickeln sich oberhalb der Surghar Überschiebung (Surghar Thrust, SGT) und der frontalen Hauptüberschiebung (Main Frontal Thrust, MFT). Ziel dieser Studie ist es, die Deformationsentwicklung und den strukturellen Bau Kohats und Potwars als Beispiel für die Vielfalt der Entwicklung im frontalen Bereich von Orogenen zu entschlüsseln. Um den strukturellen Stil und die räumlich-zeitliche Entwicklung der Hauptstrukturen in Kohat und Potwar zu untersuchen, werden in dieser Studie Strukturmodellierungs- und Niedertemperatur-Thermochronologie-Methoden verwendet. Die Strukturmodellierung basiert auf der Erstellung bilanzierter Profile, deren Grundlage die Kombination von Oberflächengeologie, seismischen Reflexionsprofilen und Bohrlochdaten bildet. Die Niedertemperatur-Thermochronologie-Methoden gründen einerseits auf Apatit (U-Th-Sm)/He (AHe) und andererseits auf Apatit-Spaltspur (AFT) Datierungen. Die Resultate beider Methoden erlauben die zeitliche Rekonstruktion von Kohat und Potwar vom Paläozoikum bis zur jüngsten Geschichte. Die Ergebnisse dieser Studie deuten auf zwei Hauptereignisse in der Verformungsgeschichte hin. Das erste große Deformationsereignis steht im Zusammenhang mit der spätpaläozoischen Riftbildung im Zuge der Öffnung der Neotethys. Das zweite große Deformationsereignis steht im Zusammenhang mit der spätmiozänen bis pliozänen Entwicklung des Himalaya Falten- und Überschiebungsgürtel. Die spät-paläozoische Riftbildung wird mittels einer inversen thermischen Modellierung der Apatit-AFT und AHe-Alter aus der „Salt Range“ rekonstruiert. Der Prozess des Riftbildung verursachte Abschiebungen, die zur Exhumierung bzw. Erosion früh- bis mittelpaläozoischer Schichten führte und eine bedeutende Diskordanz zwischen kambrischen und permischen Schichten ausbildet, die heute in der „Salt Range“ aufgeschlossen ist. Diese im Spätpaläozoikum entstandenen Abschiebungen wurden dann während der miozän-pliozänen Bildung des Falten- und Überschiebungsgürtel reakiviert. Die Rekonstruktion der Strukturen, kombiniert mit der Datierung (AFT, AHe), deutet darauf hin, dass die Verformung um ca. 15±2 Ma auf der SGT-Rampe im südlichen Teil Kohats aktiv war. Diese erste Deformation entlang der SGT hat das Vorland an den Kohat-Verformungskeil geschweisst und bildet damit die neue Verformungsfront. Die MBT bildete um ca. 12±2 Ma die nördliche Grenze von Kohat und Potwar. Die Deformation breitete sich in südlicher Richtung von der MBT aus in Kohat auf zwei Décollements aus, während sich in Potwar ein einziges basales Décollement bildete. Die beiden parallelen Décollements in Kohat formten aktive Dachüberschiebungen aus, die zum disharmonischen Stil im oberen und unteren Teil des Profils führten. Die inkrementelle Verkürzung formte Duplex-Strukturen zwischen den beiden Décollements und Schuppen oberhalb der Dachüberschiebung. Auf die tektonische Verdickung durch die Duplex-Strukturen folgte die Abkühlung bzw. Exhumation oberhalb der Dachüberschiebung durch die Abtragung mächtiger Molasseschichten. Die Rekonstruktion der Strukturen zeigt, dass die Rampen, auf denen die Duplex-Strukturen in Kohat gebildet wurden, sich in Potwar als Frontallinien der frontalen Knickung fortsetzen. Das Fehlen der beiden parallelen Décollements in Potwar führte zur Erhaltung dicker Molassenschichten in der stratigraphischen Abfolge. Die Ergebnisse der Datierung deuten darauf hin, dass sich die Verformung dann von ca. 8 bis 3 Ma normal im nördlichen Teil von Kohat und Potwar in Richtung Süden ausbreitete. Die Verformung in Kohat war intensiver durch die Bildung eines kritischen Winkels im Deformationskeil, als die signifikante Auflast über dem oberen Décollement entfernt wurde. Der südliche Teil Potwars dagegen ist durch eine geringe interne Verfomung gekennzeichnet, hervorgerufen durch eine geringere Neigung der basalen Überschiebung (β≥3°) und das Vorhandensein von Salz an der Basis der stratigraphischen Abfolge. Dabei ist stratigraphische Abfolge innerhalb des Deformationskeils erhalten. Mit der Deformation entlang der MFT um ca. 4 Ma begann die Entwicklung der „Salt Range“ als frontale Deformationszone von Potwar. Die Abtragung dicker Molassenschichten über der MFT-Rampe verstärkte die Rolle des Salzes bei der Deformation der „Salt Range“ und der Kalabagh-Störungszone. In beiden Gebieten kam es zu Abschiebungen duch Salzakkumulation und Salzmigration. Die Salzmigration in der Kalabagh- Störungszone hat durchbrechende Überschiebungen entlang der Rampen in Kohat ausgelöst. Der Verkürzungsbetrag zwischen MBT und SGT beträgt für Kohat 75±5 km und für Potwar zwischen MBT und MFT 65±5 km. Sowohl Kohat und Potwar haben trotz ihrer unterschiedlichen räumlichen Ausdehnung (70 km Kohat und 150 km Potwar) eine vergleichbare Verkürzung erfahren. Zusammenfassend lässt sich sagen, dass diese Studie aufzeigt, wie die Verformung zwischen den einzelnen Strukturen in den letzten ~15 Ma, verursacht durch unterschiedliche Deformationsausbreitung, gesprungen ist und damit für die unterschiedlichen spezifischen Struktur-Stile und durchbrechende Deformationssequenzen in Kohat und Potwar verantwortlich ist. KW - Himalaya KW - folds KW - faults KW - décollement KW - exhumation KW - Himalaja KW - Falten KW - Störungen KW - Abschiebungshorizonte KW - Exhumierung Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-440775 ER - TY - JOUR A1 - Eugster, Patricia A1 - Thiede, Rasmus Christoph A1 - Scherler, Dirk A1 - Stübner, Konstanze A1 - Sobel, Edward A1 - Strecker, Manfred T1 - Segmentation of the Main Himalayan Thrust Revealed by Low-Temperature Thermochronometry in the Western Indian Himalaya JF - Tectonics N2 - Despite remarkable tectonostratigraphic similarities along the Himalayan arc, pronounced topographic and exhumational variability exists in different morphotectonic segments. The processes responsible for this segmentation are debated. Of particular interest is a 30- to 40-km-wide orogen-parallel belt of rapid exhumation that extends from central Nepal to the western Himalaya and its possible linkage to a midcrustal ramp in the basal decollement, and the related growth of Lesser Himalayan duplex structures. Here we present 26 new apatite fission track cooling ages from the Beas-Lahul region, at the transition from the Central to the Western Himalaya (77 degrees-78 degrees E) to investigate segmentation in the Himalayan arc from a thermochronologic perspective. Together with previously published data from this part of the orogen, we document significant lateral changes in exhumation between the Dhauladar Range to the west, the Beas-Lahul region, and the Sutlej area to the east of the study area. In contrast to the Himalayan front farther east, exhumation in the far western sectors is focused at the frontal parts of the mountain range and associated with the hanging wall of the Main Boundary Thrust fault ramp. Our results allow us to spatially correlate the termination of the rapid exhumation belt with a midcrustal ramp to the west. We suggest that a plunging anticline at the northwestern edge of the Larji-Kullu-Rampur window represents the termination of the Central Himalayan segment, which is related to the evolution of the Lesser Himalayan duplex. Key Points KW - exhumation KW - Himalaya KW - duplex KW - fission track thermochronology KW - MHT Y1 - 2018 U6 - https://doi.org/10.1029/2017TC004752 SN - 0278-7407 SN - 1944-9194 VL - 37 IS - 8 SP - 2710 EP - 2726 PB - American Geophysical Union CY - Washington ER - TY - THES A1 - Eugster, Patricia T1 - Landscape evolution in the western Indian Himalaya since the Miocene T1 - Landschaftsentwicklung im westlichen indischen Himalaja seit dem Miozän N2 - The Himalayan arc stretches >2500 km from east to west at the southern edge of the Tibetan Plateau, representing one of the most important Cenozoic continent-continent collisional orogens. Internal deformation processes and climatic factors, which drive weathering, denudation, and transport, influence the growth and erosion of the orogen. During glacial times wet-based glaciers sculpted the mountain range and left overdeepend and U-shaped valleys, which were backfilled during interglacial times with paraglacial sediments over several cycles. These sediments partially still remain within the valleys because of insufficient evacuation capabilities into the foreland. Climatic processes overlay long-term tectonic processes responsible for uplift and exhumation caused by convergence. Possible processes accommodating convergence within the orogenic wedge along the main Himalayan faults, which divide the range into four major lithologic units, are debated. In this context, the identification of processes shaping the Earth’s surface on short- and on long-term are crucial to understand the growth of the orogen and implications for landscape development in various sectors along the arc. This thesis focuses on both surface and tectonic processes that shape the landscape in the western Indian Himalaya since late Miocene. In my first study, I dated well-preserved glacially polished bedrock on high-elevated ridges and valley walls in the upper of the Chandra Valley the by means of 10Be terrestrial cosmogenic radionuclides (TCN). I used these ages and mapped glacial features to reconstruct the extent and timing of Pleistocene glaciation at the southern front of the Himalaya. I was able to reconstruct an extensive valley glacier of ~200 km length and >1000 m thickness. Deglaciation of the Chandra Valley glacier started subsequently to insolation increase on the Northern Hemisphere and thus responded to temperature increase. I showed that the timing this deglaciation onset was coeval with retreat of further midlatitude glaciers on the Northern and Southern Hemispheres. These comparisons also showed that the post-LGM deglaciation very rapid, occurred within a few thousand years, and was nearly finished prior to the Bølling/Allerød interstadial. A second study (co-authorship) investigates how glacial advances and retreats in high mountain environments impact the landscape. By 10Be TCN dating and geomorphic mapping, we obtained maximal length and height of the Siachen Glacier within the Nubra Valley. Today the Shyok and Nubra confluence is backfilled with sedimentary deposits, which are attributed to the valley blocking of the Siachen Glacier 900 m above the present day river level. A glacial dam of the Siachen Glacier blocked the Shyok River and lead to the evolution of a more than 20 km long lake. Fluvial and lacustrine deposits in the valley document alternating draining and filling cycles of the lake dammed by the Siachen Glacier. In this study, we can show that glacial incision was outpacing fluvial incision. In the third study, which spans the million-year timescale, I focus on exhumation and erosion within the Chandra and Beas valleys. In this study the position and discussed possible reasons of rapidly exhuming rocks, several 100-km away from one of the main Himalayan faults (MFT) using Apatite Fission Track (AFT) thermochronometry. The newly gained AFT ages indicate rapid exhumation and confirm earlier studies in the Chandra Valley. I assume that the rapid exhumation is most likely related to uplift over subsurface structures. I tested this hypothesis by combining further low-temperature thermochronometers from areas east and west of my study area. By comparing two transects, each parallel to the Beas/Chandra Valley transect, I demonstrate similarities in the exhumation pattern to transects across the Sutlej region, and strong dissimilarities in the transect crossing the Dhauladar Range. I conclude that the belt of rapid exhumation terminates at the western end of the Kullu-Rampur window. Therewith, I corroborate earlier studies suggesting changes in exhumation behavior in the western Himalaya. Furthermore, I discussed several causes responsible for the pronounced change in exhumation patterns along strike: 1) the role of inherited pre-collisional features such as the Proterozoic sedimentary cover of the Indian basement, former ridges and geological structures, and 2) the variability of convergence rates along the Himalayan arc due to an increased oblique component towards the syntaxis. The combination of field observations (geological and geomorphological mapping) and methods to constrain short- and long-term processes (10Be, AFT) help to understand the role of the individual contributors to exhumation and erosion in the western Indian Himalaya. With the results of this thesis, I emphasize the importance of glacial and tectonic processes in shaping the landscape by driving exhumation and erosion in the studied areas. N2 - Der Himalaja, eines der wichtigsten känozoischen Kontinent-Kontinent Kollisionsgebirgen, erstreckt sich über 2500 km entlang des südlichen Randes des Tibetischen Plateaus von Ost nach West. Die Gebirgsbildung wird durch interne Deformationsprozesse und klimatische Faktoren, welche auf Verwitterung, Abtragung und Transport wirken, beeinflusst. In einem Zyklus von Eis- und Warmzeiten wurde die Landschaft durch Gletscher geformt. U-Täler sind noch heute erhaltene Spuren der Gletscher, die in den Warmzeiten durch abgetragene Sedimente verfüllt wurden. Diese Sedimente befinden sich teilweise bis heute in diesen übertieften Tälern, weil es an Kapazitäten zur Ausräumung der Täler ins Vorland mangelt. Die kurz-skaligen klimatischen Prozesse überlagern sich mit langzeitlichen tektonischen Prozessen wie Hebung und Exhumation, die durch Konvergenz verursacht werden. Im Zusammenhang mit dem Gebirgswachstum ist es entscheidend die Prozesse, welche die Erdoberfläche sowohl über kurze wie auch über längere Zeiträume formen zu bestimmen und damit auch deren Auswirkungen auf die Landschaftsentwicklung in den einzelnen Abschnitten des Gebirgsbogens. Diese Dissertation fokussiert auf tektonische und Erdoberflächenprozesse, welche den westlichen indischen Himalaja seit dem Miozän geprägt und beeinflusst haben. In der ersten Studie, habe ich im oberen Chandratal mittels 10Be terrestrischen kosmogenen Nukliden (TCN) gut erhaltene vom Gletscher geschliffene und polierte Gesteinsoberflächen auf höher gelegenen Bergrücken und entlang der Talseiten datiert. Basierend auf diesen Altern und kartierten glazialen Landformen habe ich nicht nur die Ausdehnung, sondern auch den Zeitpunkt einer Vergletscherung an der südlichen Front des Himalajas rekonstruiert. Dieser rekonstruierte Gletscher hat im Chandratal eine maximale Länge von ~200 km und >1000 m Dicke erreicht. Die Enteisung des Chandratales folgte dem Anstieg der Sonneneinstrahlung und somit der Temperaturerwärmung auf der nördlichen Hemisphäre. Der Zeitpunkt des Enteisungsbeginns stimmt mit dem Rückgang weiterer Gletscher der mittleren Breiten auf der südlichen wie auch auf der nördlichen Hemisphäre überein. Diese Vergleiche zeigen auch, dass die Enteisung der letzteiszeitlichen Vergletscherung schon vor dem Bølling/Allerød Stadium nahezu abgeschlossen war. In einer zweiten Studie (Ko-Autorenschaft) wird untersucht, wie Gletscher die Erdoberfläche formen und wie Gletschervorstöße und -rückzüge die Landschaft in alpinen Regionen beeinflussen. Die maximale Länge des Siachen Gletschers im Nubratal wurde auf mehr als 180 km rekonstruiert. Heute ist der Zusammenfluss der Flüsse Shyok und Nubra mit Sedimenten verfüllt, deren Ablagerung mit einer Blockierung des Tales durch den Siachen Gletscher bis zu 900 m über der heutigen Flusshöhe zusammenhängen. Demzufolge, staute der Siachen Gletscher den Fluss Shyok. Fluviatile und lakustrine Ablagerungen im Tal dokumentieren sich wechselnde Entleerungs- und Auffüllungszyklen dieses Gletscherstausees. In dieser Studie, konnte ebenso gezeigt werden, dass fluviatile Erosion durch die glaziale Erosion überholt wird. Über den längeren Zeitraum (Jahrmillionen) fokussiere ich auf Exhumation und Erosion in den Tälern Chandra und Beas. In dieser dritten Studie war es mir möglich mittels Apatit-Spaltspurdatierung (AFT) die Lage und Gründe der schnellen Exhumation in diesem Bereich, einige hundert Kilometer entfernt einer der Hauptstörungen des Himalajas (MFT), zu beschreiben. Die neuen AFT Alter deuten auf schnelle Exhumation hin und bestätigen frühere Studien aus dem Chandratal. Ich vermute, dass diese schnelle Exhumation mit einer Bewegung über eine krustale Rampe im Zusammenhang steht, welche auch im östlich anschließenden Sutlej Tal ausgeprägt ist. Diese Hypothese wurde durch die Kombination weiterer tieftemperatur Thermochronometer aus benachbarten Gebieten untersucht. Durch den Vergleich zweier Profile, welche parallel zum Chandra/Beas-Profil laufen wurden im östliche gelegenen Sutlej Gebiet ähnliche Exhumationsmuster gefunden. Daraus schließe ich, das Ende es "rapid exhumation belt" westlich des Kullu-Rampur Fensters im Beastal und bestätige damit auch frühere Studien. Im Weiteren wurden verschiedene Gründe wie ehemalige prä-kollisionale Strukturen und Sedimentbecken oder die abnehmende frontale Konvergenz gegen Westen diskutiert, welche sich Möglicherweise verantwortlich zeichnen für den Wechsel des Exhumationsverhaltens entlang des Streichens des Himalaja. Die Kombination aus Feldbeobachtungen (geologische und geomorphologische Kartierung) und Methoden, die über kurze und längere Zeiträume Prozesse auflösen (10Be, AFT), unterstützen die Erkenntnisse über die Rollenverteilung der einzelnen Akteure bezüglich Exhumation und Erosion im westlichen indischen Himalaja. Die Ergebnisse dieser Doktorarbeit heben die Wichtigkeit glazialer als auch tektonischer Prozesse als Steuerelemente von Exhumation und Erosion im Studiengebiet hervor. KW - Geologie KW - Himalaja KW - Thermochronologie KW - kosmogene Nuklide KW - Gletscher KW - geology KW - Himalaya KW - thermochronology KW - cosmogenic nuclides KW - glaciers Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-420329 ER - TY - JOUR A1 - Deeken, Anke A1 - Thiede, Rasmus Christoph A1 - Sobel, Edward A1 - Hourigan, J. K. A1 - Strecker, Manfred T1 - Exhumational variability within the Himalaya of northwest India JF - Earth & planetary science letters N2 - In the Himalaya of Chamba, NW India, a major orographic barrier in front of the Greater Himalayan Range extracts a high proportion of the monsoonal rainfall along its southern slopes and effectively shields the orogen interior from moisture-bearing winds. Along a similar to 100-km-long orogen perpendicular transect, 28 new apatite fission track (AFT) and 30 new zircon (U-Th)/He (ZHe) cooling ages reveal marked variations in age distributions and long-term exhumation rates between the humid frontal range and the semi-arid orogen interior. On the southern topographic front, very young, elevation-invariant AFT ages of <4 Ma have been obtained that are concentrated in a similar to 30-km-wide zone; 1-D-thermal modeling suggests a Plio-Pleistocene mean erosion rate of 0.8-1.9 mm yr(-1). In contrast, AFT and ZHe ages within the orogen interior are older (4-9 and 7-18 Ma, respectively), are positively correlated with sample elevation, and yield lower mean erosion rates (0.3-0.9 mm yr(-1)). Protracted low exhumation rates within the orogen interior over the last similar to 15 Myr prevailed contemporaneously with overall humid conditions and an effective erosional regime within the southern Himalaya. This suggests that the frontal Dhauladar Range was sufficiently high during this time to form an orographic barrier, focusing climatically enhanced erosional processes and tectonic deformation there. Thrusting along the two frontal range-bounding thrust, the Main Central Thrust and the Main Boundary Thrusts, was initiated at least similar to 15 Ma ago and has remained localized since then. The lack of evidence for localized uplift farther north indicates either a rather flat decollement with no ramp or the absence of active duplex systems beneath the interior of Chamba. Exhumational variability within Chamba is best explained as the result of continuous thrusting along a major basal decollement, with a flat beneath the slowly exhuming internal compartments and a steep frontal ramp at the rapidly exhuming frontal range. The pattern in Chamba contrasts with what is observed elsewhere along the Himalaya, where exhumation is focused in a zone similar to 150 km north of the orogenic front. In the NW Himalaya, preserved High Himalayan Crystalline nappes and Lesser Himalayan windows alternate on a relatively small scale of <100 km; these alternations are closely correlated with the pattern of exhumation. Although the spatial distribution of high-exhumation zones varies considerably between individual Himalayan sectors, all of these zones are closely correlated with locally higher rock-uplift rates, sharp topographic discontinuities, and focused orographic precipitation, suggesting strong feedbacks between tectonically driven rock uplift, orographically enhanced precipitation, and erosional processes. KW - apatite fission-track KW - zircon uranium-thorium-helium KW - thermochronology KW - exhumation KW - Himalaya KW - Haimantas Y1 - 2011 U6 - https://doi.org/10.1016/j.epsl.2011.02.045 SN - 0012-821X VL - 305 IS - 1-2 SP - 103 EP - 114 PB - Elsevier CY - Amsterdam ER - TY - THES A1 - Bookhagen, Bodo T1 - Late quaternary climate changes and landscape evolution in the Northwest Himalaya : geomorphologic processes in the Indian Summer Monsoon Domain N2 - The India-Eurasia continental collision zone provides a spectacular example of active mountain building and climatic forcing. In order to quantify the critically important process of mass removal, I analyzed spatial and temporal precipitation patterns of the oscillating monsoon system and their geomorphic imprints. I processed passive microwave satellite data to derive high-resolution rainfall estimates for the last decade and identified an abnormal monsoon year in 2002. During this year, precipitation migrated far into the Sutlej Valley in the northwestern part of the Himalaya and reached regions behind orographic barriers that are normally arid. There, sediment flux, mean basin denudation rates, and channel-forming processes such as erosion by debris-flows increased significantly. Similarly, during the late Pleistocene and early Holocene, solar forcing increased the strength of the Indian summer monsoon for several millennia and presumably lead to analogous precipitation distribution as were observed during 2002. However, the persistent humid conditions in the steep, high-elevation parts of the Sutlej River resulted in deep-seated landsliding. Landslides were exceptionally large, mainly due to two processes that I infer for this time: At the onset of the intensified monsoon at 9.7 ka BP heavy rainfall and high river discharge removed material stored along the river, and lowered the baselevel. Second, enhanced discharge, sediment flux, and increased pore-water pressures along the hillslopes eventually lead to exceptionally large landslides that have not been observed in other periods. The excess sediments that were removed from the upstream parts of the Sutlej Valley were rapidly deposited in the low-gradient sectors of the lower Sutlej River. Timing of downcutting correlates with centennial-long weaker monsoon periods that were characterized by lower rainfall. I explain this relationship by taking sediment flux and rainfall dynamics into account: High sediment flux derived from the upstream parts of the Sutlej River during strong monsoon phases prevents fluvial incision due to oversaturation the fluvial sediment-transport capacity. In contrast, weaker monsoons result in a lower sediment flux that allows incision in the low-elevation parts of the Sutlej River. N2 - Die Indisch-Eurasische Kontinentalkollision ist ein beeindruckendes Beispiel für weitreichenden, tektonisch kontrollierten klimatischen Einfluss. Um den Einfluss von klimatisch bedingter Erosion auf die Orogenese zu testen, habe ich erosive Oberflächenprozesse, Monsunvariationen und fluviatilen Massentransfer auf verschiedenen Zeitscheiben analysiert. Um genaue Niederschläge auf einem grossen Raum zu quantifizieren, habe ich durch Wettersatelliten aufgezeichnete passive Mikrowellendaten für die letzten zehn Jahre untersucht. Erstaunlicherweise variiert der Niederschlag nur wenig von Jahr zu Jahr und ein Großteil des Regens wird durch orographische Effekte gesteuert. Im Jahre 2002 allerdings, habe ich ein abnormal starkes Monsunjahr feststellen können. Zu dieser Zeit ist der Monsunniederschlag weiter in das Gebirge vorgedrungen und hat viele Massenbewegungen wie z.B. Schuttströme und Muren ausgelöst. Dabei verdoppelten sich die Erosionsraten im Einzugsgebiet. Ich zeige anhand von Satellitenbildern, aufgenommen vor und nach dem Monsun, dass sich hierbei vor allen Dingen kleine, neue Flußläufe entwickeln. In höher gelegenen, normalerweise trockenen Gebieten findet man auch Überreste von enormen Bergstürzen und dahinter aufgestauten Seen. Datierungen dieser geomorphologischen Phänomene zeigen, dass sie nur in zwei Phasen während der letzten 30.000 Jahre auftreten: Im späten Pleistozän vor rund 27.000 Jahren und im frühen Holozän vor 8000 Jahre. Diese Zeiten sind durch einen starken Monsun, der durch die Insolation kontrolliert wird, gekennzeichnet. Analog zur Niederschlagsverteilung im Jahre 2002 ist der Monsun aber nicht nur für ein Jahr, sondern mehrere hundert oder tausend Jahre lang kontinuierlich in die heute ariden Gebiete vorgedrungen. Der erhöhte Porenwasserdruck und die erstarkten Flüsse lösten dann durch laterale Unterschneidung große Bergstürze aus, die zu keiner anderen Zeit beobachtet wurden. Die temporären Becken in den Hochlagen, die durch Bergstürze entstanden sind, entstehen in Feuchtphasen und werden in schwächeren Monsunphasen von Flüssen abgetragen und verdeutlicht die komplexe Beziehung zwischen Klima und Massentransfer verdeutlicht. ---- Anmerkung: Der Autor wurde 2005 mit dem 7. Publikationspreis des Leibniz-Kollegs Potsdam für Nachwuchswissenschaftler/innen in Naturwissenschaften ausgezeichnet. T2 - Late quaternary climate changes and landscape evolution in the Northwest Himalaya : geomorphologic processes in the Indian Summer Monsoon Domain KW - Monsun KW - Himalaja KW - Klima KW - Indien KW - Bergstürze KW - Geomorphologie KW - Asian monsoon KW - Himalaya KW - climate KW - landslides KW - geomorphology Y1 - 2004 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-0001956 ER - TY - JOUR A1 - Bloethe, Jan H. A1 - Munack, Henry A1 - Korup, Oliver A1 - Fuelling, Alexander A1 - Garzanti, Eduardo A1 - Resentini, Alberto A1 - Kubik, Peter W. T1 - Late Quaternary valley infill and dissection in the Indus River, western Tibetan Plateau margin JF - Quaternary science reviews : the international multidisciplinary research and review journal N2 - The Indus, one of Earth's major rivers, drains large parts of the NW Himalaya and the Transhimalayan ranges that form part of the western Tibetan Plateau margin. In the western Himalayan syntaxis, where local topographic relief exceeds 7 km, the Indus has incised a steep bedrock gorge at rates of several mm yr(-1). Upstream, however, the upper Indus and its tributaries alternate between bedrock gorges and broad alluvial flats flanked by the Ladakh and Zanskar ranges. We review the late Quaternary valley history in this region with a focus on the confluence of the Indus and Zanskar Rivers, where vast alluvial terrace staircases and lake sediments record major episodes of aggradation and incision. New absolute dating of high-level fluvial terrace remnants using cosmogenic Be-10, optically and infrared stimulated luminescence (OSL, IRSL) indicates at least two phases of late Quaternary valley infilling. These phases commenced before similar to 200 ka and similar to 50-20 ka, judging from terrace treads stranded >150 m and similar to 30-40 m above modern river levels, respectively. Numerous stacks of lacustrine sediments that straddle the Indus River >200 km between the city of Leh and the confluence with the Shyok River share a distinct horizontal alignment. Constraints from IRSL samples of lacustrine sequences from the Leh-Spituk area reveal a protracted lake phase from >177 ka to 72 ka, locally accumulating >50-m thick deposits. In the absence of tectonic faulting, major lithological differences, and stream capture, we attribute the formation of this and other large lakes in the region to natural damming by large landslides, glaciers, and alluvial fans. The overall patchy landform age constraints from earlier studies can be reconciled by postulating a major deglacial control on sediment flux, valley infilling, and subsequent incision that has been modulated locally by backwater effects of natural damming. While comparison with Pleistocene monsoon proxies reveals no obvious correlation, a lateor post-glacial sediment pulse seems a more likely source of this widespread sedimentation that has partly buried the dissected bedrock topography. Overall, the long residence times of fluvial, alluvial and lacustrine deposits in the region (>500 ka) support previous studies, but remain striking given the dominantly steep slopes and deeply carved valleys that characterise this high-altitude mountain desert. Recalculated late Quaternary rates of fluvial bedrock incision in the Indus and Zanskar of 1.5 +/- 0.2 mm yr(-1) are at odds with the longevity of juxtaposed valley-fill deposits, unless a lack of decisive lateral fluvial erosion helps to preserve these late Pleistocene sedimentary archives. We conclude that alternating, similar to 10(4)-yr long, phases of massive infilling and incision have dominated the late Quaternary history of the Indus valley below the western Tibetan Plateau margin. (C) 2014 Elsevier Ltd. All rights reserved. KW - Himalaya KW - Indus KW - Valley fills KW - Glaciation KW - Erosion KW - Lake sediment Y1 - 2014 U6 - https://doi.org/10.1016/j.quascirev.2014.04.011 SN - 0277-3791 VL - 94 SP - 102 EP - 119 PB - Elsevier CY - Oxford ER -