TY - JOUR A1 - Kühn, Michael A1 - Altmannsberger, Charlotte A1 - Hens, Carmen T1 - Waiweras WarmwasserreservoirWelche Aussagekraft haben Modelle? JF - Grundwasser : Zeitschrift der Fachsektion Hydrogeologie in der Deutschen Gesellschaft für Geowissenschaften (FH-DGG) N2 - The warm water geothermal reservoir below the village of Waiwera in New Zealand has been known by the native Maori for centuries. Development by the European immigrants began in 1863. Until the year 1969, the warm water flowing from all drilled wells was artesian. Due to overproduction, water up to 50 A degrees C now needs to be pumped to surface. Further, between 1975 and 1976, all warm water seeps on the beach of Waiwera ran dry. Within the context of sustainable water management, hydrogeological models must be developed as part of a management plan. Approaches of varying complexity have been set-up and applied since the 1980s. However, none of the models directly provide all results required for optimal water management. Answers are given simply to parts of the questions, nonetheless improving resource management of the geothermal reservoir. KW - Groundwater KW - Geothermal water KW - Seawater intrusion KW - Simulation KW - Reservoir KW - Management Y1 - 2016 U6 - https://doi.org/10.1007/s00767-016-0323-2 SN - 1430-483X SN - 1432-1165 VL - 21 SP - 107 EP - 117 PB - Springer CY - Heidelberg ER - TY - JOUR A1 - Böttcher, Steven A1 - Merz, Christoph A1 - Lischeid, Gunnar A1 - Dannowski, Ralf T1 - Using Isomap to differentiate between anthropogenic and natural effects on groundwater dynamics in a complex geological setting JF - Journal of hydrology N2 - Due to increasing demands and competition for high quality groundwater resources in many parts of the world, there is an urgent need for efficient methods that shed light on the interplay between complex natural settings and anthropogenic impacts. Thus a new approach is introduced, that aims to identify and quantify the predominant processes or factors of influence that drive groundwater and lake water dynamics on a catchment scale. The approach involves a non-linear dimension reduction method called Isometric feature mapping (Isomap). This method is applied to time series of groundwater head and lake water level data from a complex geological setting in Northeastern Germany. Two factors explaining more than 95% of the observed spatial variations are identified: (1) the anthropogenic impact of a waterworks in the study area and (2) natural groundwater recharge with different degrees of dampening at the respective sites of observation. The approach enables a presumption-free assessment to be made of the existing geological conception in the catchment, leading to an extension of the conception. Previously unknown hydraulic connections between two aquifers are identified, and connections revealed between surface water bodies and groundwater. (C) 2014 Elsevier B.V. All rights reserved. KW - Groundwater KW - Lake KW - Interaction KW - Isometric feature mapping KW - Time series analysis Y1 - 2014 U6 - https://doi.org/10.1016/j.jhydrol.2014.09.048 SN - 0022-1694 SN - 1879-2707 VL - 519 SP - 1634 EP - 1641 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Balcke, Gerd U. A1 - Hahn, M. A1 - Oswald, Sascha Eric T1 - Nitrogen as an indicator of mass transfer during in-situ gas sparging JF - Journal of contaminant hydrology N2 - Aiming at the stimulation of intrinsic microbial activity, pulses of pure oxygen or pressurized air were recurrently injected into groundwater polluted with chlorobenzene. To achieve well-controlled conditions and intensive sampling, a large, vertical underground tank was filled with the local unconfined sandy aquifer material. In the course of two individual gas injections, one using pure oxygen and one using pressurized air, the mass transfer of individual gas species between trapped gas phase and groundwater was studied. Field data on the dissolved gas composition in the groundwater were combined with a kinetic model on gas dissolution and transport in porous media. Phase mass transfer of individual gas components caused a temporary enrichment of nitrogen, and to a lower degree of methane, in trapped gas leading to the formation of excess dissolved nitrogen levels downgradient from the dissolving gas phase. By applying a novel gas sampling method for dissolved gases in groundwater it was shown that dissolved nitrogen can be used as a partitioning tracer to indicate complete gas dissolution in porous media. KW - Inter-phase mass transfer KW - Groundwater KW - Remediation KW - Gas sparging KW - Nitrogen KW - Methane KW - Kinetics KW - Bitterfeld Y1 - 2011 U6 - https://doi.org/10.1016/j.jconhyd.2011.05.005 SN - 0169-7722 VL - 126 IS - 1-2 SP - 8 EP - 18 PB - Elsevier CY - Amsterdam ER - TY - THES A1 - Olaka, Lydia Atieno T1 - Hydrology across scales : sensitivity of East African lakes to climate changes T1 - Sensitivität auf Ostafrikanischen Riftseen zu Klimawandel N2 - The lakes of the East African Rift System (EARS) have been intensively studied to better understand the influence of climate change on hydrological systems. The exceptional sensitivity of these rift lakes, however, is both a challenge and an opportunity when trying to reconstruct past climate changes from changes in the hydrological budget of lake basins on timescales 100 to 104 years. On one hand, differences in basin geometrics (shape, area, volume, depth), catchment rainfall distributions and varying erosion-deposition rates complicate regional interpretation of paleoclimate information from lacustrine sediment proxies. On the other hand, the sensitivity of rift lakes often provides paleoclimate records of excellent quality characterized by a high signal-to-noise ratio. This study aims at better understanding of the climate-proxy generating process in rift lakes by parameterizing the geomorphological and hydroclimatic conditions of a particular site providing a step towards the establishment of regional calibrations of transfer functions for climate reconstructions. The knowledge of the sensitivity of a lake basin to climate change furthermore is crucial for a better assessment of the probability of catastrophic changes in the future, which bear risks for landscapes, ecosystems, and organisms of all sorts, including humans. Part 1 of this thesis explores the effect of the morphology and the effective moisture of a lake catchment. The availability of digital elevation models (DEM) and gridded climate data sets facilitates the comparison of the morphological and hydroclimatic conditions of rift lakes. I used the hypsometric integral (HI) calculated from Shuttle Radar Topography Mission (SRTM) data to describe the morphology of ten lake basins in Kenya and Ethiopia. The aridity index (AI) describing the difference in the precipitation/evaporation balance within a catchment was used to compare the hydroclimatic of these basins. Correlating HI and AI with published Holocene lake-level variations revealed that lakes responding sensitively to relatively moderate climate change are typically graben shaped and characterized by a HI between 0.23-0.30, and relatively humid conditions with AI >1. These amplifier lakes, a term first introduced but not fully parameterized by Alayne Street-Perrott in the early 80s, are unexceptionally located in the crest of the Kenyan and Ethiopian domes. The non-amplifier lakes in the EARS either have lower HI 0.13-0.22 and higher AI (>1) or higher HI (0.31-0.37) and low AI (<1), reflecting pan-shaped morphologies with more arid hydroclimatic conditions. Part 2 of this work addresses the third important factor to be considered when using lake-level and proxy records to unravel past climate changes in the EARS: interbasin connectivity and groundwater flow through faulted and porous subsurface lithologies in a rift setting. First, I have compiled the available hydrogeological data including lithology, resistivity and water-well data for the adjacent Naivasha and Elmenteita-Nakuru basins in the Central Kenya Rift. Using this subsurface information and established records of lake-level decline at the last wet-dry climate transitions, i.e., the termination of the African Humid Period (AHP, 15 to 5 kyr BP), I used a linear decay model to estimate typical groundwater flow between the two basins. The results suggest a delayed response of the groundwater levels of ca. 5 kyrs if no recharge of groundwater occurs during the wet-dry transition, whereas the lag is 2-2.7 kyrs only using the modern recharge of ca. 0.52 m/yr. The estimated total groundwater flow from higher Lake Naivasha (1,880 m a.s.l. during the AHP) to Nakuru-Elmenteita (1,770 m) was 40 cubic kilometers. The unexpectedly large volume, more than half of the volume of the paleo-Lake Naivasha during the Early Holocene, emphasizes the importance of groundwater in hydrological modeling of paleo-lakes in rifts. Moreover, the subsurface connectivity of rift lakes also causes a significant lag time to the system introducing a nonlinear component to the system that has to be considered while interpreting paleo-lake records. Part 3 of this thesis investigated the modern intraseasonal precipitation variability within eleven lake basins discussed in the first section of the study excluding Lake Victoria and including Lake Tana. Remotely sensed rainfall estimates (RFE) from FEWS NET for 1996-2010, are used for the, March April May (MAM) July August September (JAS), October November (ON) and December January February (DJF). The seasonal precipitation are averaged and correlated with the prevailing regional and local climatic mechanisms. Results show high variability with Biennial to Triennial precipitation patterns. The spatial distribution of precipitation in JAS are linked to the onset and strength of the Congo Air Boundary (CAB) and Indian Summer Monsoon (ISM) dynamics. while in ON they are related to the strength of Positive ENSO and IOD phases This study describes the influence of graben morphologies, extreme climate constrasts within catchments and basins connectivity through faults and porous lithologies on rift lakes. Hence, it shows the importance of a careful characterization of a rift lake by these parameters prior to concluding from lake-level and proxy records to climate changes. Furthermore, this study highlights the exceptional sensitivity of rift lakes to relatively moderate climate change and its consequences for water availability to the biosphere including humans. N2 - Die Seen des Ostafrikanischen Riftsystems (EARS) wurden bereits intensiv untersucht, um den Einfluss des Klimawandels auf das hydrologische Systeme besser verstehen zu können. Dabei stellt die außergewöhnliche Sensitivität dieser Riftseen sowohl eine Herausforderung als auch eine Möglichkeit dar, um den historischen Klimawandel von dem hydrologischen Budget der Seebecken auf Zeitskalen von 10 bis 10000 Jahre abzuleiten. Auf der einen Seite verkomplizieren verschiedene Beckengeometrien (Form, Fläche, Volumen, Tiefe), unterschiedliche Niederschlagsverteilungen der einzelnen Zuflüsse und variierende Erosions- und Sedimentationsraten, die aus den Informationen von Seesedimenten generierten, regionalen Interpretationen des Paleoklimas. Andererseits ergibt sich aus der hohen Sensitivität der Riftseen eine exzellente Datenqualität, was sich in dem hohen Signal - Rausch-Verhältnis widerspiegelt. Das Ziel meiner Untersuchungen ist das verbesserte Verständlichkeit der Klimainformationen generierenden Prozesse in den Riftseen als Voraussetzung für weitere Klimarekonstruktion. Fortschritte gab es vor allem in der Entwicklung von regionalen Kalibrationen durch die Parametrisierung der geomorphologischen und hydroklimatischen Gegebenheiten einer wichtigen Lokalität, wodurch es jetzt möglich ist, von Sedimentfunden auf die Umgebungsbedingungen Rückschlüsse zu ziehen. Das Wissen um die Reaktion der Seebecken auf Klimaschwankungen ist unerlässlich für eine bessere Abschätzung der Wahrscheinlichkeit von katastrophalen Änderungen in der Zukunft:ein Szenario das sowohl für Umwelt, Ökosysteme und Organismen, einschließlich des Menschen, Risiken birgt. Im ersten Teil meiner Doktorarbeit untersuche ich den Effekt der Morphologie und der effektiven Feuchtigkeit auf das Einzugsgebiet eines Sees. Die Verfügbarkeit von digitalen Höhenmodellen (DEM) und gerasterten Klimadatensätzen ermöglicht den Vergleich von morphologischen und hydroklimatischen Bedingungen der Riftseen. Ich nutzte das hypsometrische Integral (HI), berechnet aus Daten der “Shuttle Radar Topography Mission (SRTM)”, um die Morphologie von zehn Seebecken in Kenia und Äthopien zu beschreiben. Der Dürreindex (AI), der die Differenz von Niederschlag zu Verdunstung innerhalb eines Einzugsgebietes beschreibt, wurde benutzt, um das Hydroklima dieser Becken zu vergleichen. Die Korrelation von hypsometrischem Integral und Dürreindex mit publizierten holozänen Seespiegelschwankungen zeigte, dass vor allem Seen mit kleiner Oberfläche und großer Tiefe (Grabenform), charakterisiert durch ein HI von 0.23-0.30 und feuchte Bedingungen mit einem AI > 1, empfindlich auf relativ moderate Klimaänderungen reagieren. Diese “verstärkenden” Seen (amplifier lakes), ein Begriff der von Alayne Street-Perrott in den Achzigerjahren eingeführt wurde aber bis heute nicht völlig quantitativ definiert ist, sind ohne Ausnahme in den tiefen Gräben der kenianischen und äthiopischen Dome zu finden. Seen innerhalb des EARS, die nicht derart empfindlich reagieren, haben entweder ein niedrigeres HI von 0.13-0.22 und einen höheren AI (>1) oder ein höherers HI (0.31-0.37) aber einen niedrigen AI (<1) und zeigen großflächige, flache Morphologien (Pfannenform) unter trockenen klimatischen Bedingungen. Der zweite Teil der Arbeit beschäftigt sich mit einem weiteren wichtigen Faktor innerhalb der Klimarekonstruktion, wenn Seespiegelschwankungen und indirekte Messungen (Proxies) betrachtet werden:den störungsbezogenen und porösen Gesteinsschichten geschuldeten Grundwasserverbindungen zwischen den Becken. Als erstes habe ich die vorhandenen hydrogeologischen Daten bestehend aus den Gesteinsformationen, deren Widerstandsfähigkeit und den wasserbezogenen Bohrdaten für die Seen Naivasha und Elementaita-Nakuru zusammengestellt. Mit diesen bereits etablierten Untergrunddaten, z.B. zum Seespiegelrückgang am letzten Übergang von feuchtem zum trockeneren Klima am Ende der afrikanischen Feuchtperiode (AHP) um 15000 bis 5000 Jahre vor heute, schätzte ich den typischen Grundwasserfluss zwischen den beiden benachbarten Becken mittels eines linearen Modells ab. Die Ergebnisse zeigen eine Zeitverzögerung der Grundwasserspiegelanpassung um ca. 5000 Jahre an, falls keine Auffüllung der Grundwasserzufuhr zum Ende der letzten Feuchtperiode eintrat. In heutiger Zeit, ist bedingt durch die Grundwassererzufuhr von ca. 0.52 m/Jahr, nur eine Zeitverzögerung um ca. 2000-2700 Jahre zu sehen. Der geschätzte totale Grundwasserfluss vom höher gelegenden Naivasha See (1880 m über dem Meeresspiegel zum Ende der AHP) zum Elementaita-Nakuru See (1770 m) betrug 40 km3. Dieses unerwartet große Volumen, mehr als die Hälfte des Volumens vom Naivasha See während des frühen Holozäns, verdeutlicht, dass das Grundwasser für die hydrologische Modellierung von Paleoseen in Riftgebieten unbedingt mit einbezogen werden muss. Darüber hinaus führt die Grundwasserverbindung dieser Riftseen zu einer Zeitverzögerung in deren Reaktionen, was eine nichtlineare Komponente darstellt und bei jeder Interpretation von Paleoseespiegeldaten beachtet werden muss. Der dritte Teil dieser Arbeit untersucht die intrasaisonale Niederschlagsvariabilität innerhalb von 11 Einzugsgebieten die im ersten Teil Arbeit vorgestellt wurden, mit Ausnahme des Viktoriasees, aber inklusive des Tanasees. Aus Satellitenbilddaten des FEWS NET der Jahre 1996-2010 wurden Niederschlagsabschätzungen für die Monatsreihen März-April-Mai (MAM), Juli-August-September (JAS), Oktober-November (ON) und Dezember-Januar-Februar (DJF) berechnet. Der jahreszeitliche Niederschlag wurde gemittelt und mit den dominierenden regionalen und lokalen Klimafaktoren korreliert. Die Ergebnisse zeigen eine deutliche zwei- bis dreijährige Niederschlagsvariabilität. Die räumliche Niederschlagsverteilung innerhalb des Ostafrikanische Rifts im JAS ist an die Ausbildung und Stärke der Kongoluftmassengrenze (CAB) und an die Dynamik des Indischen Sommermonsuns gekoppelt, während sie im ON an die Stärke der positiven ENSO und IOD Phasen gebunden ist. Diese Doktorarbeit beschreibt den Einfluss von Grabenmorphologien, extremen Klimakontrasten innerhalb der Zuflussgebiete und die unterirdischen Beckenverbindung durch Störungszonen und poröse Gesteinsschichten zwischen den Riftseen. Damit zeigt sie die Unerlässlichkeit einer genauen Charakterisierung von Riftseen durch morphologische und klimatische Parameter, bevor von Seespiegelschwankungen und indirekten Datensätzen auf Klimaänderungen geschlossen werden kann. Desweiteren stellt diese Arbeit die hohe Empfindsamkeit dieser Seen gegenüber relativ moderaten Klimaänderungen und deren Konsequenzen für die insgesamte Wasserverfügbarkeit heraus. KW - Ostafrikanisches Riftsystem KW - Klima KW - verstärkende Seen KW - Grundwasser KW - Skalierung KW - East African Rift System KW - Climate KW - Amplifier Lakes KW - Groundwater KW - Scaling Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-55029 ER - TY - JOUR A1 - Perkins, Anita K. A1 - Ganzert, Lars A1 - Rojas-Jimenez, Keilor A1 - Fonvielle, Jeremy Andre A1 - Hose, Grant C. A1 - Grossart, Hans-Peter T1 - Highly diverse fungal communities in carbon-rich aquifers of two contrasting lakes in Northeast Germany JF - Fungal ecology N2 - Fungi are an important component of microbial communities and are well known for their ability to decompose refractory, highly polymeric organic matter. In soils and aquatic systems, fungi play an important role in carbon processing, however, their diversity, community structure and function as well as ecological role, particularly in groundwater, are poorly studied. The aim of this study was to examine the fungal community composition, diversity and function in groundwater from 16 boreholes located in the vicinity of two lakes in NE Germany that are characterized by contrasting trophic status. The analysis of 28S rRNA gene sequences amplified from the groundwater revealed high fungal diversity arid clear differences in community structure between the aquifers. Most sequences were assigned to Ascomycota and Basidiomycota, but members of Chytridiomycota, Cryptomycota, Zygomycota, Blastocladiomycota, Glomeromycota and Neocallimastigomycota were also detected. In addition, 27 species of fungi were successfully isolated from the groundwater samples and tested for their ability to decompose complex organic polymers - the predominant carbon source in the groundwater. Most isolates showed positive activities for at least one of the tested polymer types, with three strains, belonging to the genera Gibberella, Isaria and Cadophora, able to decompose all tested substrates. Our results highlight the high diversity of fungi in groundwater, and point to their important ecological role in breaking down highly polymeric organic matter in these isolated microbial habitats. (C) 2019 Elsevier Ltd and British Mycological Society. All rights reserved. KW - Groundwater KW - Aquatic fungi KW - DOC KW - CDOM KW - Aquifers KW - Humic acids Y1 - 2019 U6 - https://doi.org/10.1016/j.funeco.2019.04.004 SN - 1754-5048 SN - 1878-0083 VL - 41 SP - 116 EP - 125 PB - Elsevier CY - Oxford ER - TY - JOUR A1 - Al-Mashaikhi, K. A1 - Oswald, Sascha Eric A1 - Attinger, Sabine A1 - Büchel, G. A1 - Knöller, K. A1 - Strauch, G. T1 - Evaluation of groundwater dynamics and quality in the Najd aquifers located in the Sultanate of Oman JF - Environmental earth sciences N2 - The Najd, Oman, is located in one of the most arid environments in the world. The groundwater in this region is occurring in four different aquifers A to D of the Hadhramaut Group consisting mainly of different types of limestone and dolomite. The quality of the groundwater is dominated by the major ions sodium, calcium, magnesium, sulphate, and chloride, but the hydrochemical character is varying among the four aquifers. Mineralization within the separate aquifers increases along the groundwater flow direction from south to north-northeast up to high saline sodium-chloride water in aquifer D in the northeast area of the Najd. Environmental isotope analyses of hydrogen and oxygen were conducted to monitor the groundwater dynamics and to evaluate the recharge conditions of groundwater into the Najd aquifers. Results suggest an earlier recharge into these aquifers as well as ongoing recharge takes place in the region down to present day. Mixing of modern and submodern waters was detected by water isotopes in aquifer D in the mountain chain (Jabal) area and along the northern side of the mountain range. In addition, delta H-2 and delta O-18 variations suggest that aquifers A, B, and C are assumed to be connected by faults and fractures, and interaction between the aquifers may occur. Low tritium concentrations support the mixing assumption in the recharge area. The knowledge about the groundwater development is an important factor for the sustainable use of water resources in the Dhofar region. KW - Environmental isotopes KW - Groundwater KW - Najd aquifer KW - Oman KW - Recharge KW - Water quality Y1 - 2012 U6 - https://doi.org/10.1007/s12665-011-1331-2 SN - 1866-6280 VL - 66 IS - 4 SP - 1195 EP - 1211 PB - Springer CY - New York ER - TY - JOUR A1 - Samprogna Mohor, Guilherme A1 - Hudson, Paul A1 - Thieken, Annegret T1 - A comparison of factors driving flood losses in households affected by different flood types JF - Water resources research N2 - Flood loss data collection and modeling are not standardized, and previous work has indicated that losses from different flood types (e.g., riverine and groundwater) may follow different driving forces. However, different flood types may occur within a single flood event, which is known as a compound flood event. Therefore, we aimed to identify statistical similarities between loss-driving factors across flood types and test whether the corresponding losses should be modeled separately. In this study, we used empirical data from 4,418 respondents from four survey campaigns studying households in Germany that experienced flooding. These surveys sought to investigate several features of the impact process (hazard, socioeconomic, preparedness, and building characteristics, as well as flood type). While the level of most of these features differed across flood type subsamples (e.g., degree of preparedness), they did so in a nonregular pattern. A variable selection process indicates that besides hazard and building characteristics, information on property-level preparedness was also selected as a relevant predictor of the loss ratio. These variables represent information, which is rarely adopted in loss modeling. Models shall be refined with further data collection and other statistical methods. To save costs, data collection efforts should be steered toward the most relevant predictors to enhance data availability and increase the statistical power of results. Understanding that losses from different flood types are driven by different factors is a crucial step toward targeted data collection and model development and will finally clarify conditions that allow us to transfer loss models in space and time.
Key Points
Survey data of flood-affected households show different concurrent flood types, undermining the use of a single-flood-type loss model Thirteen variables addressing flood hazard, the building, and property level preparedness are significant predictors of the building loss ratio Flood type-specific models show varying significance across the predictor variables, indicating a hindrance to model transferability KW - Loss modeling KW - Riverine floods KW - Surface floods KW - Groundwater KW - Levee KW - breaches KW - Compound flood event Y1 - 2020 U6 - https://doi.org/10.1029/2019WR025943 SN - 0043-1397 SN - 1944-7973 VL - 56 IS - 4 PB - American Geophysical Union CY - Washington ER -