TY - JOUR A1 - Skålevåg, Amalie A1 - Vormoor, Klaus Josef T1 - Daily streamflow trends in Western versus Eastern Norway and their attribution to hydro-meteorological drivers JF - Hydrological processes : an international journal N2 - Regional warming and modifications in precipitation regimes has large impacts on streamflow in Norway, where both rainfall and snowmelt are important runoff generating processes. Hydrological impacts of recent changes in climate are usually investigated by trend analyses applied on annual, seasonal, or monthly time series. None of these detect sub-seasonal changes and their underlying causes. This study investigated sub-seasonal changes in streamflow, rainfall, and snowmelt in 61 and 51 catchments respectively in Western (Vestlandet) and Eastern (ostlandet) Norway by applying the Mann-Kendall test and Theil-Sen estimator on 10-day moving averaged daily time series over a 30-year period (1983-2012). The relative contribution of rainfall versus snowmelt to daily streamflow and the changes therein have also been estimated to identify the changing relevance of these driving processes over the same period. Detected changes in 10-day moving averaged daily streamflow were finally attributed to changes in the most important hydro-meteorological drivers using multiple-regression models with increasing complexity. Earlier spring flow timing in both regions occur due to earlier snowmelt. ostlandet shows increased summer streamflow in catchments up to 1100 m a.s.l. and slightly increased winter streamflow in about 50% of the catchments. Trend patterns in Vestlandet are less coherent. The importance of rainfall has increased in both regions. Attribution of trends reveals that changes in rainfall and snowmelt can explain some streamflow changes where they are dominant processes (e.g., spring snowmelt in ostlandet and autumn rainfall in Vestlandet). Overall, the detected streamflow changes can be best explained by adding temperature trends as an additional predictor, indicating the relevance of additional driving processes such as increased glacier melt and evapotranspiration. KW - attribution KW - climate change KW - hydrological change KW - hydro-meteorological KW - driver KW - streamflow trend KW - trend analysis Y1 - 2021 U6 - https://doi.org/10.1002/hyp.14329 SN - 0885-6087 SN - 1099-1085 VL - 35 IS - 8 PB - Wiley CY - New York ER - TY - GEN A1 - Mtilatila, Lucy Mphatso Ng'ombe A1 - Bronstert, Axel A1 - Vormoor, Klaus Josef T1 - Temporal evaluation and projections of meteorological droughts in the Greater Lake Malawi Basin, Southeast Africa T2 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe N2 - The study examined the potential future changes of drought characteristics in the Greater Lake Malawi Basin in Southeast Africa. This region strongly depends on water resources to generate electricity and food. Future projections (considering both moderate and high emission scenarios) of temperature and precipitation from an ensemble of 16 bias-corrected climate model combinations were blended with a scenario-neutral response surface approach to analyses changes in: (i) the meteorological conditions, (ii) the meteorological water balance, and (iii) selected drought characteristics such as drought intensity, drought months, and drought events, which were derived from the Standardized Precipitation and Evapotranspiration Index. Changes were analyzed for a near-term (2021–2050) and far-term period (2071–2100) with reference to 1976–2005. The effect of bias-correction (i.e., empirical quantile mapping) on the ability of the climate model ensemble to reproduce observed drought characteristics as compared to raw climate projections was also investigated. Results suggest that the bias-correction improves the climate models in terms of reproducing temperature and precipitation statistics but not drought characteristics. Still, despite the differences in the internal structures and uncertainties that exist among the climate models, they all agree on an increase of meteorological droughts in the future in terms of higher drought intensity and longer events. Drought intensity is projected to increase between +25 and +50% during 2021–2050 and between +131 and +388% during 2071–2100. This translates into +3 to +5, and +7 to +8 more drought months per year during both periods, respectively. With longer lasting drought events, the number of drought events decreases. Projected droughts based on the high emission scenario are 1.7 times more severe than droughts based on the moderate scenario. That means that droughts in this region will likely become more severe in the coming decades. Despite the inherent high uncertainties of climate projections, the results provide a basis in planning and (water-)managing activities for climate change adaptation measures in Malawi. This is of particular relevance for water management issues referring hydro power generation and food production, both for rain-fed and irrigated agriculture. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 1287 KW - meteorological drought KW - drought intensity KW - climate change KW - drought events KW - Lake Malawi KW - Shire River KW - drought projections KW - South-Eastern Africa Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-571284 SN - 1866-8372 IS - 1287 ER - TY - JOUR A1 - Mtilatila, Lucy Mphatso Ng'ombe A1 - Bronstert, Axel A1 - Vormoor, Klaus Josef T1 - Temporal evaluation and projections of meteorological droughts in the Greater Lake Malawi Basin, Southeast Africa JF - Frontiers in Water N2 - The study examined the potential future changes of drought characteristics in the Greater Lake Malawi Basin in Southeast Africa. This region strongly depends on water resources to generate electricity and food. Future projections (considering both moderate and high emission scenarios) of temperature and precipitation from an ensemble of 16 bias-corrected climate model combinations were blended with a scenario-neutral response surface approach to analyses changes in: (i) the meteorological conditions, (ii) the meteorological water balance, and (iii) selected drought characteristics such as drought intensity, drought months, and drought events, which were derived from the Standardized Precipitation and Evapotranspiration Index. Changes were analyzed for a near-term (2021–2050) and far-term period (2071–2100) with reference to 1976–2005. The effect of bias-correction (i.e., empirical quantile mapping) on the ability of the climate model ensemble to reproduce observed drought characteristics as compared to raw climate projections was also investigated. Results suggest that the bias-correction improves the climate models in terms of reproducing temperature and precipitation statistics but not drought characteristics. Still, despite the differences in the internal structures and uncertainties that exist among the climate models, they all agree on an increase of meteorological droughts in the future in terms of higher drought intensity and longer events. Drought intensity is projected to increase between +25 and +50% during 2021–2050 and between +131 and +388% during 2071–2100. This translates into +3 to +5, and +7 to +8 more drought months per year during both periods, respectively. With longer lasting drought events, the number of drought events decreases. Projected droughts based on the high emission scenario are 1.7 times more severe than droughts based on the moderate scenario. That means that droughts in this region will likely become more severe in the coming decades. Despite the inherent high uncertainties of climate projections, the results provide a basis in planning and (water-)managing activities for climate change adaptation measures in Malawi. This is of particular relevance for water management issues referring hydro power generation and food production, both for rain-fed and irrigated agriculture. KW - meteorological drought KW - drought intensity KW - climate change KW - drought events KW - Lake Malawi KW - Shire River KW - drought projections KW - South-Eastern Africa Y1 - 2022 U6 - https://doi.org/10.3389/frwa.2022.1041452 SN - 2624-9375 SP - 1 EP - 16 PB - Frontiers Media S.A. CY - Lausanne, Schweiz ER - TY - JOUR A1 - van Rees, Charles B. A1 - Waylen, Kerry A. A1 - Schmidt-Kloiber, Astrid A1 - Thackeray, Stephen J. A1 - Kalinkat, Gregor A1 - Martens, Koen A1 - Domisch, Sami A1 - Lillebo, Ana A1 - Hermoso, Virgilio A1 - Grossart, Hans-Peter A1 - Schinegger, Rafaela A1 - Decleer, Kris A1 - Adriaens, Tim A1 - Denys, Luc A1 - Jaric, Ivan A1 - Janse, Jan H. A1 - Monaghan, Michael T. A1 - De Wever, Aaike A1 - Geijzendorffer, Ilse A1 - Adamescu, Mihai C. A1 - Jähnig, Sonja C. T1 - Safeguarding freshwater life beyond 2020 BT - recommendations for the new global biodiversity framework from the European experience JF - Conservation letters N2 - Plans are currently being drafted for the next decade of action on biodiversity-both the post-2020 Global Biodiversity Framework of the Convention on Biological Diversity (CBD) and Biodiversity Strategy of the European Union (EU). Freshwater biodiversity is disproportionately threatened and underprioritized relative to the marine and terrestrial biota, despite supporting a richness of species and ecosystems with their own intrinsic value and providing multiple essential ecosystem services. Future policies and strategies must have a greater focus on the unique ecology of freshwater life and its multiple threats, and now is a critical time to reflect on how this may be achieved. We identify priority topics including environmental flows, water quality, invasive species, integrated water resources management, strategic conservation planning, and emerging technologies for freshwater ecosystem monitoring. We synthesize these topics with decades of first-hand experience and recent literature into 14 special recommendations for global freshwater biodiversity conservation based on the successes and setbacks of European policy, management, and research. Applying and following these recommendations will inform and enhance the ability of global and European post-2020 biodiversity agreements to halt and reverse the rapid global decline of freshwater biodiversity. KW - climate change KW - conservation KW - ecosystem services KW - rivers KW - sustainable KW - development goals KW - water resources KW - wetlands Y1 - 2020 U6 - https://doi.org/10.1111/conl.12771 SN - 1755-263X VL - 14 IS - 1 PB - Wiley CY - Hoboken ER - TY - JOUR A1 - Pan, Xiaohui A1 - Wang, Weishi A1 - Liu, Tie A1 - Huang, Yue A1 - De Maeyer, Philippe A1 - Guo, Chenyu A1 - Ling, Yunan A1 - Akmalov, Shamshodbek T1 - Quantitative detection and attribution of groundwater level variations in the Amu Darya Delta JF - Water N2 - In the past few decades, the shrinkage of the Aral Sea is one of the biggest ecological catastrophes caused by human activity. To quantify the joint impact of both human activities and climate change on groundwater, the spatiotemporal groundwater dynamic characteristics in the Amu Darya Delta of the Aral Sea from 1999 to 2017 were analyzed, using the groundwater level, climate conditions, remote sensing data, and irrigation information. Statistics analysis was adopted to analyze the trend of groundwater variation, including intensity, periodicity, spatial structure, while the Pearson correlation analysis and principal component analysis (PCA) were used to quantify the impact of climate change and human activities on the variabilities of the groundwater level. Results reveal that the local groundwater dynamic has varied considerably. From 1999 to 2002, the groundwater level dropped from -189 cm to -350 cm. Until 2017, the groundwater level rose back to -211 cm with fluctuation. Seasonally, the fluctuation period of groundwater level and irrigation water was similar, both were about 18 months. Spatially, the groundwater level kept stable within the irrigation area and bare land but fluctuated drastically around the irrigation area. The Pearson correlation analysis reveals that the dynamic of the groundwater level is closely related to irrigation activity within the irrigation area (Nukus: -0.583), while for the place adjacent to the Aral Sea, the groundwater level is closely related to the Large Aral Sea water level (Muynak: 0.355). The results of PCA showed that the cumulative contribution rate of the first three components exceeds 85%. The study reveals that human activities have a great impact on groundwater, effective management, and the development of water resources in arid areas is an essential prerequisite for ecological protection. KW - groundwater level variation KW - climate change KW - human activities KW - statistical analysis KW - Amu Darya Delta Y1 - 2020 U6 - https://doi.org/10.3390/w12102869 SN - 2073-4441 VL - 12 IS - 10 PB - MDPI CY - Basel ER - TY - JOUR A1 - Tesselaar, Max A1 - Botzen, W. J. Wouter A1 - Haer, Toon A1 - Hudson, Paul A1 - Tiggeloven, Timothy A1 - Aerts, Jeroen C. J. H. T1 - Regional inequalities in flood insurance affordability and uptake under climate change JF - Sustainability N2 - Flood insurance coverage can enhance financial resilience of households to changing flood risk caused by climate change. However, income inequalities imply that not all households can afford flood insurance. The uptake of flood insurance in voluntary markets may decline when flood risk increases as a result of climate change. This increase in flood risk may cause substantially higher risk-based insurance premiums, reduce the willingness to purchase flood insurance, and worsen problems with the unaffordability of coverage for low-income households. A socio-economic tipping-point can occur when the functioning of a formal flood insurance system is hampered by diminishing demand for coverage. In this study, we examine whether such a tipping-point can occur in Europe for current flood insurance systems under different trends in future flood risk caused by climate and socio-economic change. This analysis gives insights into regional inequalities concerning the ability to continue to use flood insurance as an instrument to adapt to changing flood risk. For this study, we adapt the "Dynamic Integrated Flood and Insurance" (DIFI) model by integrating new flood risk simulations in the model that enable examining impacts from various scenarios of climate and socio-economic change on flood insurance premiums and consumer demand. Our results show rising unaffordability and declining demand for flood insurance across scenarios towards 2080. Under a high climate change scenario, simulations show the occurrence of a socio-economic tipping-point in several regions, where insurance uptake almost disappears. A tipping-point and related inequalities in the ability to use flood insurance as an adaptation instrument can be mitigated by introducing reforms of flood insurance arrangements. KW - climate change KW - flood risk management KW - insurance KW - socio-economic KW - tipping-point KW - adaptation KW - partial equilibrium modeling Y1 - 2020 U6 - https://doi.org/10.3390/su12208734 SN - 2071-1050 VL - 12 IS - 20 PB - MDPI CY - Basel ER - TY - JOUR A1 - Reibold, Kerstin T1 - Settler Colonialism, Decolonization, and Climate Change JF - Journal of applied philosophy N2 - The article proposes that climate change makes enduring colonial injustices and structures visible. It focuses on the imposition and dominance of colonial concepts of land and self-determination on Indigenous peoples in settler states. It argues that if the dominance of these colonial frameworks remains unaddressed, the progressing climate change will worsen other colonial injustices, too. Specifically, Indigenous self-determination capabilities will be increasingly undermined, and Indigenous peoples will experience the loss of what they understand as relevant land from within their own ontologies of land. The article holds that even if settler states strive to repair colonial injustices, these efforts will be unsuccessful if climate change occurs and decolonization is pursued within the framework of a settler colonial ontology of land. Therefore, the article suggests, decolonization of the ontologies of land and concepts of self-determination is a precondition for a just response to climate change. KW - territorial rights KW - indigenous rights KW - climate change KW - colonialism Y1 - 2022 U6 - https://doi.org/10.1111/japp.12573 SN - 0264-3758 SN - 1468-5930 PB - Wiley-Blackwell CY - Oxford ER - TY - THES A1 - Krummenauer, Linda T1 - Global heat adaptation among urban populations and its evolution under different climate futures T1 - Globale Hitzeanpassung urbaner Bevölkerungen und deren Entwicklung unter verschiedenen klimatischen Zukünften N2 - Heat and increasing ambient temperatures under climate change represent a serious threat to human health in cities. Heat exposure has been studied extensively at a global scale. Studies comparing a defined temperature threshold with the future daytime temperature during a certain period of time, had concluded an increase in threat to human health. Such findings however do not explicitly account for possible changes in future human heat adaptation and might even overestimate heat exposure. Thus, heat adaptation and its development is still unclear. Human heat adaptation refers to the local temperature to which populations are adjusted to. It can be inferred from the lowest point of the U- or V-shaped heat-mortality relationship (HMR), the Minimum Mortality Temperature (MMT). While epidemiological studies inform on the MMT at the city scale for case studies, a general model applicable at the global scale to infer on temporal change in MMTs had not yet been realised. The conventional approach depends on data availability, their robustness, and on the access to daily mortality records at the city scale. Thorough analysis however must account for future changes in the MMT as heat adaptation happens partially passively. Human heat adaptation consists of two aspects: (1) the intensity of the heat hazard that is still tolerated by human populations, meaning the heat burden they can bear and (2) the wealth-induced technological, social and behavioural measures that can be employed to avoid heat exposure. The objective of this thesis is to investigate and quantify human heat adaptation among urban populations at a global scale under the current climate and to project future adaptation under climate change until the end of the century. To date, this has not yet been accomplished. The evaluation of global heat adaptation among urban populations and its evolution under climate change comprises three levels of analysis. First, using the example of Germany, the MMT is calculated at the city level by applying the conventional method. Second, this thesis compiles a data pool of 400 urban MMTs to develop and train a new model capable of estimating MMTs on the basis of physical and socio-economic city characteristics using multivariate non-linear multivariate regression. The MMT is successfully described as a function of the current climate, the topography and the socio-economic standard, independently of daily mortality data for cities around the world. The city-specific MMT estimates represents a measure of human heat adaptation among the urban population. In a final third analysis, the model to derive human heat adaptation was adjusted to be driven by projected climate and socio-economic variables for the future. This allowed for estimation of the MMT and its change for 3 820 cities worldwide for different combinations of climate trajectories and socio-economic pathways until 2100. The knowledge on the evolution of heat adaptation in the future is a novelty as mostly heat exposure and its future development had been researched. In this work, changes in heat adaptation and exposure were analysed jointly. A wide range of possible health-related outcomes up to 2100 was the result, of which two scenarios with the highest socio-economic developments but opposing strong warming levels were highlighted for comparison. Strong economic growth based upon fossil fuel exploitation is associated with a high gain in heat adaptation, but may not be able to compensate for the associated negative health effects due to increased heat exposure in 30% to 40% of the cities investigated caused by severe climate change. A slightly less strong, but sustainable growth brings moderate gains in heat adaptation but a lower heat exposure and exposure reductions in 80% to 84% of the cities in terms of frequency (number of days exceeding the MMT) and intensity (magnitude of the MMT exceedance) due to a milder global warming. Choosing a 2 ° C compatible development by 2100 would therefore lower the risk of heat-related mortality at the end of the century. In summary, this thesis makes diverse and multidisciplinary contributions to a deeper understanding of human adaptation to heat under the current and the future climate. It is one of the first studies to carry out a systematic and statistical analysis of urban characteristics which are useful as MMT drivers to establish a generalised model of human heat adaptation, applicable at the global level. A broad range of possible heat-related health options for various future scenarios was shown for the first time. This work is of relevance for the assessment of heat-health impacts in regions where mortality data are not accessible or missing. The results are useful for health care planning at the meso- and macro-level and to urban- and climate change adaptation planning. Lastly, beyond having met the posed objective, this thesis advances research towards a global future impact assessment of heat on human health by providing an alternative method of MMT estimation, that is spatially and temporally flexible in its application. N2 - Hitze und steigende Umgebungstemperaturen im Zuge des Klimawandels stellen eine ernsthafte Bedrohung für die menschliche Gesundheit in Städten dar. Die Hitzeexposition wurde umfassend auf globaler Ebene untersucht. Studien, die eine definierte Temperaturschwelle mit der zukünftigen Tagestemperatur während eines bestimmten Zeitraums verglichen, hatten eine Zunahme der Gefährdung der menschlichen Gesundheit ergeben. Solche Ergebnisse berücksichtigen jedoch nicht explizit mögliche Veränderungen der zukünftigen menschlichen Hitzeadaption und könnten daher sogar die Hitzeexposition überschätzen. Somit ist die menschliche Adaption an Hitze und ihre zukünftige Entwicklung noch unklar. Die menschliche Hitzeadaption bezieht sich auf die lokale Temperatur, an die sich die Bevölkerung angepasst hat. Sie lässt sich aus dem Tiefpunkt der U- oder V-förmigen Relation zwischen Hitze und Mortalität (HMR), der Mortalitätsminimaltemperatur (MMT), ableiten. Während epidemiologische Fallstudien über die MMT auf Stadtebene informieren, wurde ein auf globaler Ebene anwendbares allgemeines Modell, um auf die zeitliche Veränderung der MMTs zu schließen, bisher noch nicht realisiert. Der konventionelle Ansatz ist abhängig von der Datenverfügbarkeit, ihrer Robustheit und dem Zugang zu täglichen Mortalitätsdaten auf Stadtebene. Eine gründliche Analyse muss jedoch zukünftige Veränderungen in der MMT berücksichtigen, da die menschliche Hitzeanpassung teils passiv erfolgt. Die menschliche Hitzeanpassung besteht aus zwei Aspekten: (1) aus der Intensität der Hitze, die von der menschlichen Bevölkerung noch toleriert wird, also die Hitzebelastung, die sie ertragen kann, und (2) aus vermögensbedingten technologischen, sozialen und verhaltensbezogenen Maßnahmen, die zur Vermeidung von Hitzeexposition eingesetzt werden können. Das Ziel dieser Arbeit ist es, die menschliche Hitzeanpassung der städtischen Bevölkerung unter dem aktuellen Klima auf globaler Ebene zu untersuchen und zu quantifizieren und die zukünftige Anpassung an den Klimawandel bis zum Ende des Jahrhunderts zu projizieren. Dies wurde bis heute noch nicht erreicht. Die Bewertung der globalen Hitzeanpassung städtischer Bevölkerungen und ihrer Entwicklung unter dem Klimawandel umfasst drei Analyseebenen. Erstens wird am Beispiel Deutschlands die MMT auf Stadtebene nach der konventionellen Methode berechnet. Zweitens trägt diese Arbeit einen Datenpool von 400 städtischen MMTs zusammen, um auf dessen Basis ein neues Modell zu entwickeln und zu trainieren, welches in der Lage ist, MMTs auf der Grundlage von physischen und sozioökonomischen Stadtmerkmalen mittels multivariater nichtlinearer multivariater Regression zu schätzen. Es wird gezeigt, dass die MMT als Funktion des aktuellen Klimas, der Topographie und des sozioökonomischen Standards beschrieben werden kann, unabhängig von täglichen Sterblichkeitsdaten für Städte auf der ganzen Welt. Die stadtspezifischen MMT-Schätzungen stellen ein Maß für die menschliche Hitzeanpassung der städtischen Bevölkerung dar. In einer letzten dritten Analyse wurde das Modell zur Schätzung der menschlichen Hitzeadaption angepasst, um von für die Zukunft projizierten Klima- und sozioökonomischen Variablen angetrieben zu werden. Dies ermöglichte eine Schätzung des MMT und seiner Veränderung für 3 820 Städte weltweit für verschiedene Kombinationen aus Klimatrajektorien und sozioökonomischen Entwicklungspfaden bis 2100. Das Wissen über die Entwicklung der menschlichen Hitzeanpassung in der Zukunft ist ein Novum, da bisher hauptsächlich die Hitzeexposition und ihre zukünftige Entwicklung erforscht wurden. In dieser Arbeit wurden die Veränderungen der menschlichen Hitzeadaptation und der Hitzeexposition gemeinsam analysiert. Das Ergebnis ist ein breites Spektrum möglicher gesundheitsbezogener Zukünfte bis 2100, von denen zum Vergleich zwei Szenarienkombinationen mit den höchsten sozioökonomischen Entwicklungen, aber gegensätzlichen starken Erwärmungsniveaus hervorgehoben wurden. Ein starkes Wirtschaftswachstum auf der Grundlage der Nutzung fossiler Brennstoffe fördert zwar einen hohen Zugewinn an Hitzeanpassung, kann jedoch die damit verbundenen negativen gesundheitlichen Auswirkungen aufgrund der erhöhten Exposition in rund 30% bis 40% der untersuchten Städte aufgrund eines starken Klimawandels möglicherweise nicht ausgleichen. Ein etwas weniger starkes, dafür aber nachhaltiges Wachstum bringt aufgrund einer milderen globalen Erwärmung eine moderate Hitzeanpassung und eine geringere Hitzeexposition und sogar eine Abnahme der Exposition in 80% bis 84% der Städte in Bezug auf Häufigkeit (Anzahl der Tage über der MMT) und Intensität (Magnitude der MMT-Überschreitung). Die Wahl einer 2 ° C-kompatiblen Entwicklung bis 2100 würde daher das Risiko einer hitzebedingten Sterblichkeit am Ende des Jahrhunderts senken. Zusammenfassend liefert diese Dissertation vielfältige und multidisziplinäre Beiträge zu einem tieferen Verständnis der menschlichen Hitzeanpassung unter dem gegenwärtigen und zukünftigen Klima. Es ist eine der ersten Studien, die eine systematische und statistische Analyse städtischer Merkmale durchführt, die sich als MMT-Treiber verwenden lassen, um ein verallgemeinertes Modell der menschlichen Hitzeanpassung zu erarbeiten, das auf globaler Ebene anwendbar ist. Erstmals wurde ein breites Spektrum möglicher hitzebedingter Gesundheitsoptionen für verschiedene Zukunftsszenarien aufgezeigt. Diese Arbeit ist von Bedeutung für die Bewertung von hitzebezogener Gesundheitsauswirkungen in Regionen, in denen Mortalitätsdaten nicht zugänglich sind oder fehlen. Die Ergebnisse sind nützlich für die Gesundheitsplanung auf Meso- und Makroebene sowie für die Stadtplanung und die Planung der Anpassung an den Klimawandel. Über das Erreichen des gestellten Ziels hinaus treibt diese Dissertation die Forschung in Richtung einer globalen zukünftigen Folgenabschätzung von Hitze auf die menschliche Gesundheit voran, indem eine alternative Methode der MMT-Schätzung bereitgestellt wird, die in ihrer Anwendung räumlich und zeitlich flexibel ist. KW - heat KW - adaptation KW - global KW - populations KW - climate change KW - temperature KW - mortality KW - minimum mortality temperature KW - projection KW - future KW - health KW - model KW - socio-economy KW - wealth KW - acclimatisation KW - Akklimatisierung KW - Anpassung KW - Hitzeanpassung KW - Klimawandel KW - Zukunft KW - global KW - Gesundheit KW - Hitze KW - Mortalitäts-Minimal-Temperatur KW - Modell KW - Mortalität KW - Bevölkerung KW - Projektion KW - Sozioökonomie KW - Temperatur KW - Wohlstand KW - exposure KW - hazard KW - cities KW - Exposition KW - Naturgefahr KW - Städte Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-559294 ER - TY - THES A1 - Kemter, Matthias T1 - River floods in a changing world T1 - Flusshochwasser in einer sich ändernden Welt N2 - River floods are among the most devastating natural hazards worldwide. As their generation is highly dependent on climatic conditions, their magnitude and frequency are projected to be affected by future climate change. Therefore, it is crucial to study the ways in which a changing climate will, and already has, influenced flood generation, and thereby flood hazard. Additionally, it is important to understand how other human influences - specifically altered land cover - affect flood hazard at the catchment scale. The ways in which flood generation is influenced by climatic and land cover conditions differ substantially in different regions. The spatial variability of these effects needs to be taken into account by using consistent datasets across large scales as well as applying methods that can reflect this heterogeneity. Therefore, in the first study of this cumulative thesis a complex network approach is used to find 10 clusters of similar flood behavior among 4390 catchments in the conterminous United States. By using a consistent set of 31 hydro-climatological and land cover variables, and training a separate Random Forest model for each of the clusters, the regional controls on flood magnitude trends between 1960-2010 are detected. It is shown that changes in rainfall are the most important drivers of these trends, while they are regionally controlled by land cover conditions. While climate change is most commonly associated with flood magnitude trends, it has been shown to also influence flood timing. This can lead to trends in the size of the area across which floods occur simultaneously, the flood synchrony scale. The second study is an analysis of data from 3872 European streamflow gauges and shows that flood synchrony scales have increased in Western Europe and decreased in Eastern Europe. These changes are attributed to changes in flood generation, especially a decreasing relevance of snowmelt. Additionally, the analysis shows that both the absolute values and the trends of flood magnitudes and flood synchrony scales are positively correlated. If these trends persist in the future and are not accounted for, the combined increases of flood magnitudes and flood synchrony scales can exceed the capacities of disaster relief organizations and insurers. Hazard cascades are an additional way through which climate change can influence different aspects of flood hazard. The 2019/2020 wildfires in Australia, which were preceded by an unprecedented drought and extinguished by extreme rainfall that led to local flooding, present an opportunity to study the effects of multiple preceding hazards on flood hazard. All these hazards are individually affected by climate change, additionally complicating the interactions within the cascade. By estimating and analyzing the burn severity, rainfall magnitude, soil erosion and stream turbidity in differently affected tributaries of the Manning River catchment, the third study shows that even low magnitude floods can pose a substantial hazard within a cascade. This thesis shows that humanity is affecting flood hazard in multiple ways with spatially and temporarily varying consequences, many of which were previously neglected (e.g. flood synchrony scale, hazard cascades). To allow for informed decision making in risk management and climate change adaptation, it will be crucial to study these aspects across the globe and to project their trajectories into the future. The presented methods can depict the complex interactions of different flood drivers and their spatial variability, providing a basis for the assessment of future flood hazard changes. The role of land cover should be considered more in future flood risk modelling and management studies, while holistic, transferable frameworks for hazard cascade assessment will need to be designed. N2 - Flusshochwasser gehören zu den verheerendsten Naturkatastrophen weltweit. Ihre Entstehung hängt von klimatischen Bedingungen ab, weshalb vorhergesagt wird, dass sich ihre Magnituden und Häufigkeit durch den Klimawandel ändern werden. Daher ist es notwendig zu untersuchen, auf welche Art sich ein verändertes Klima - auch im Vergleich mit Effekten durch Landbedeckungsänderungen - auf Hochwasserentstehung und -gefahr auswirken könnte und das bereits getan hat. Diese kumulative Arbeit beleuchtet drei Teilaspekte dieses Themas. In der ersten Studie werden mittels maschinellen Lernens die wichtigsten Variablen entdeckt und untersucht, die die Änderungen von Hochwassermagnituden in 4390 Einzugsgebieten in den USA von 1960-2010 kontrolliert haben. Es wird gezeigt, dass Änderungen der Regenmengen der entscheidende Faktor waren, während Landnutzung regional von großer Bedeutung war. Die zweite Studie untersucht von 1960-2010 Änderungen in der Distanz innerhalb welcher Hochwasser in verschiedenen Flüssen gleichzeitig auftreten. Daten von 3872 europäischen Flusspegeln zeigen, dass sich die Fläche der gleichzeitigen Überflutung in Westeuropa vergrößert und in Osteuropa verkleinert hat, was auf abnehmende Relevanz der Schneeschmelze bei der Hochwasserentstehung zurückzuführen ist. Die dritte Studie behandelt die Auswirkungen kaskadierender Naturkatastrophen auf Hochwasser am Beispiel der australischen Waldbrände 2019/2020. Die Untersuchung der verschieden stark betroffenen Nebenflüsse des Manning River zeigt, dass in einer Naturgefahrenkaskade selbst gewöhnliche Hochwasser substantielle Auswirkungen haben können. Diese Arbeit zeigt, dass die Menschheit Hochwassergefahren auf verschiedene Arten und mit räumlich sowie zeitlich variablen Resultaten beeinflusst. Diese Aspekte müssen zukünftig global näher untersucht und ihre Entwicklung für die Zukunft modelliert werden, um fundierte Entscheidungen in Hochwasserschutz treffen zu können. Für Hochwassermagnituden und die Fläche gleichzeitiger Überflutung können hierfür die präsentierten Methoden adaptiert werden. KW - hydrology KW - climate change KW - flood KW - Hydrologie KW - Klimawandel KW - Hochwasser Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-558564 ER - TY - THES A1 - Kahl, Sandra T1 - Evolutionary adaptive responses to rapid climate change in plants T1 - Evolutionäre Anpassungsstrategien von Pflanzen an den Klimawandel BT - a case study of the widely distributed species Silene vulgaris BT - ein Fallbeispiel der weit verbreiteten Art Silene vulgaris N2 - The ongoing climate change is altering the living conditions for many organisms on this planet at an unprecedented pace. Hence, it is crucial for the survival of species to adapt to these changing conditions. In this dissertation Silene vulgaris is used as a model organism to understand the adaption strategies of widely distributed plant species to the current climate change. Especially plant species that possess a wide geographic range are expected to have a high phenotypic plasticity or to show genetic differentiation in response to the different climate conditions they grow in. However, they are often underrepresented in research. In the greenhouse experiment presented in this thesis, I examined the phenotypic responses and plasticity in S. vulgaris to estimate its’ adaptation potential. Seeds from 25 wild European populations were collected along a latitudinal gradient and grown in a greenhouse under three different precipitation (65 mm, 75 mm, 90 mm) and two different temperature regimes (18°C, 21°C) that resembled a possible climate change scenario for central Europe. Afterwards different biomass and fecundity-related plant traits were measured. The treatments significantly influenced the plants but did not reveal a latitudinal difference in response to climate treatments for most plant traits. The number of flowers per individual however, showed a stronger plasticity in northern European populations (e.g., Swedish populations) where numbers decreased more drastically with increased temperature and decreased precipitation. To gain an even deeper understanding of the adaptation of S. vulgaris to climate change it is also important to reveal the underlying phylogeny of the sampled populations. Therefore, I analysed their population genetic structure through whole genome sequencing via ddRAD. The sequencing revealed three major genetic clusters in the S. vulgaris populations sampled in Europe: one cluster comprised Southern European populations, one cluster Western European populations and another cluster contained central European populations. A following analysis of experimental trait responses among the clusters to the climate-change scenario showed that the genetic clusters significantly differed in biomass-related traits and in the days to flowering. However, half of the traits showed parallel response patterns to the experimental climate-change scenario. In addition to the potential geographic and genetic adaptation differences to climate change this dissertation also deals with the response differences between the sexes in S. vulgaris. As a gynodioecious species populations of S. vulgaris consist of female and hermaphrodite individuals and the sexes can differ in their morphological traits which is known as sexual dimorphism. As climate change is becoming an important factor influencing plant morphology it remains unclear if and how different sexes may respond in sexually dimorphic species. To examine this question the sex of each individual plant was determined during the greenhouse experiment and the measured plant traits were analysed accordingly. In general, hermaphrodites had a higher number of flowers but a lower number of leaves than females. With regards to the climate change treatment, I found that hermaphrodites showed a milder negative response to higher temperatures in the number of flowers produced and in specific leaf area (SLA) compared to females. Synthesis – The significant treatment response in Silene vulgaris, independent of population origin in most traits suggests a high degree of universal phenotypic plasticity. Also, the three European intraspecific genetic lineages detected showed comparable parallel response patterns in half of the traits suggesting considerable phenotypic plasticity. Hence, plasticity might represent a possible adaptation strategy of this widely distributed species during ongoing and future climatic changes. The results on sexual dimorphism show that females and hermaphrodites are differing mainly in their number of flowers and females are affected more strongly by the experimental climate-change scenario. These results provide a solid knowledge basis on the sexual dimorphism in S. vulgaris under climate change, but further research is needed to determine the long-term impact on the breeding system for the species. In summary this dissertation provides a comprehensive insight into the adaptation mechanisms and consequences of a widely distributed and gynodioecious plant species and leverages our understanding of the impact of anthropogenic climate change on plants. N2 - Der derzeitige Klimawandel verändert die Lebensbedingungen für viele Tiere und Pflanzen auf unserem Planeten in nie da gewesenem Maße. Damit Arten überleben, ist es von besonderer Wichtigkeit, dass sich diese an die sich ändernden Klimabedingungen anpassen können. Die vorliegende Dissertation befasst sich mit der Modellpflanze Silene vulgaris und versucht zu ergründen, wie sich solch weit verbreitete Pflanzenarten an den Klimawandel anpassen. Dabei ist zu erwarten, dass sie eine hohe phänotypische Plastizität besitzen, durch die sie sich gut anpassen können oder, dass sie sich durch eine genetische Differenzierung als Antwort auf die vorherrschenden Umweltbedingungen auszeichnen. Im experimentellen Ansatz dieser Dissertation untersuchte ich daher die phänotypischen Anpassungen und die phänotypische Plastizität von S. vulgaris an ein mögliches Klimawandelszenario für Zentraleuropa. Dabei wurden die Samen von 25 europäischen Populationen gesammelt und in einem Gewächshausexperiment unter drei verschiedenen Niederschlagsbedingungen (65 mm, 75 mm, 90 mm) und zwei verschiedenen Temperaturbedingungen (18°C, 21°C) herangezogen. Im Anschluss wurden verschiedene Biomasse- und Fertilitätsmerkmale gemessen. Für ein tiefergehendes Verständnis der Anpassungsmöglichkeiten von S. vulgaris an den Klimawandel ist es zudem wichtig, auch die zugrundeliegende Phylogenie der Populationen zu verstehen. In diesem Zusammenhang nutzte ich eine genomweite Sequenziermethode mittels ddRAD. Die Bedingungen im Gewächshausexperiment beeinflussten die Pflanzen signifikant in ihren phänotypischen Merkmalen, jedoch ließ sich kein Unterschied zwischen Population unterschiedlicher Herkunft erkennen. Lediglich die Anzahl der Blüten zeigte eine größere Plastizität in nördlichen europäischen Populationen, wo sich die Blütenzahl stärker dezimierte unter höheren Temperaturen und stärkerer Trockenheit. Die populationsgenetische Analyse ergab drei distinkte phylogenetische Gruppen für die untersuchten europäischen Populationen von S. vulgaris: eine Gruppe beinhaltete südeuropäische Populationen aus Spanien und Südfrankreich, eine weitere Gruppe bestand aus den gesammelten Individuen der westfranzösischen Populationen, während die dritte Gruppe, die Populationen aus Mittel- und Nordeuropa enthielt. Diese genetischen Gruppen wurden anschließend ebenfalls der Merkmalsanalyse unter den Gewächshausbedingungen unterzogen. Dabei stellte sich heraus, dass sich die genetischen Gruppen in ihren phänotypischen Merkmalen unterschieden, jedoch eine ähnliche Anpassung ihrer Merkmale an die experimentellen Klimawandelbedingungen zeigten. Der dritte Aspekt dieser Dissertation befasste sich mit möglichen Anpassungsunterschieden zwischen den Geschlechtern in S. vulgaris. Als gynodiözische Art bestehen ihre Populationen sowohl aus weiblichen, also auch aus zwittrigen Individuen. Die phänotypischen Merkmale beider Geschlechter können sich dabei unterscheiden, was man als Sexualdimorphismus bezeichnet. Es ist bereits bekannt, dass sich Pflanzenmerkmale durch den anhaltenden Klimawandel bereits verändern, jedoch ist es nicht gut erforscht, ob und wie sich die unterschiedlichen Geschlechter bei einer sexuell dimorphen Art unter diesem Selektionsdruck verhalten. Während des Gewächshausexperiments wurden daher die Geschlechter der Individuen bestimmt und die phänotypischen Unterschiede zwischen weiblichen und zwittrigen Pflanzen analysiert. Allgemein lässt sich sagen, dass zwittrige Individuen mehr Blüten aber weniger Blätter hatten als weibliche. Im Hinblick auf die experimentellen Klimawandelbedingungen konnte ich zudem feststellen, dass Hermaphroditen in ihrer spezifischen Blattfläche und der Blütenanzahl weniger stark negativ auf höhere Temperaturen reagierten. Synthese – Die signifikanten Merkmalsanpassungen an die Gewächshausbedingungen waren unabhängig von der geographischen Herkunft oder genetischen Gruppe der Individuen. Dies lässt ein hohes Maß an universeller, phänotypischer Plastizität vermuten. Dementsprechend kann davon ausgegangen werden, dass phänotypische Plastizität ein möglicher Anpassungsmechanismus für diese weit verbreitete Art an den Klimawandel sein könnte. Im Hinblick auf den Sexualdimorphismus in S. vulgaris lässt sich sagen, dass sich beide Geschlechter vornehmlich in der Anzahl der Blüten unterscheiden und dass weibliche Pflanzen stärker von den Bedingungen des Gewächshausexperiments beeinflusst wurden. Diese Dissertation konnte damit erstmals darüber Aufschluss geben, wie sich S. vulgaris im Hinblick auf ihren Sexualdimorphismus unter Klimawandelbedingungen verhält. Weitere Forschung wird nun benötigt, um auch den Langzeiteffekt des Klimawandels auf das Fortpflanzungssystem dieser Art abschätzen zu können. Zusammenfassend lässt sich sagen, dass die vorliegende Arbeit einen umfassenden Einblick in die Anpassungsmechanismen einer weit verbreiteten Pflanzenart an den anthropogenen Klimawandel gibt. Zudem bestärkt sie unser Verständnis der Auswirkungen, die sich daraus für eine gynodiözische Art, wie S. vulgaris ergeben. KW - Silene vulgaris KW - climate change KW - plant adaptation KW - Silene vulgaris KW - Klimawandel KW - Pflanzenanpassung Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-556483 ER -