@misc{TaffarelloSrinivasanSamprognaMohoretal.2018, author = {Taffarello, Denise and Srinivasan, Raghavan and Samprogna Mohor, Guilherme and Guimar{\~a}es, Jo{\~a}o Luis Bittencourt and Calijuri, Maria do Carmo and Mendiondo, Eduardo Mario}, title = {Modeling freshwater quality scenarios with ecosystem-basedadaptation in the headwaters of the Cantareira system, Brazil}, series = {Postprints der Universit{\"a}t Potsdam : Mathematisch-Naturwissenschaftliche Reihe}, journal = {Postprints der Universit{\"a}t Potsdam : Mathematisch-Naturwissenschaftliche Reihe}, number = {935}, issn = {1866-8372}, doi = {10.25932/publishup-45925}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-459253}, pages = {4699 -- 4723}, year = {2018}, abstract = {Although hydrologic models provide hypothesis testing of complex dynamics occurring at catchments, fresh-water quality modeling is still incipient at many subtropical headwaters. In Brazil, a few modeling studies assess freshwater nutrients, limiting policies on hydrologic ecosystem services. This paper aims to compare freshwater quality scenarios under different land-use and land-cover (LULC) change, one of them related to ecosystem-based adaptation (EbA), in Brazilian headwaters. Using the spatially semi-distributed Soil and Water Assessment Tool (SWAT) model, nitrate, total phosphorous (TP) and sediment were modeled in catchments ranging from 7.2 to 1037 km(2). These head-waters were eligible areas of the Brazilian payment for ecosystem services (PES) projects in the Cantareira water supply system, which had supplied water to 9 million people in the Sao Paulo metropolitan region (SPMR). We considered SWAT modeling of three LULC scenarios: (i) recent past scenario (S1), with historical LULC in 1990; (ii) current land-use scenario (S2), with LULC for the period 2010-2015 with field validation; and (iii) future land-use scenario with PES (S2 + EbA). This latter scenario proposed forest cover restoration through EbA following the river basin plan by 2035. These three LULC scenarios were tested with a selected record of rainfall and evapotranspiration observed in 2006-2014, with the occurrence of extreme droughts. To assess hydrologic services, we proposed the hydrologic service index (HSI), as a new composite metric comparing water pollution levels (WPL) for reference catchments, related to the grey water footprint (greyWF) and water yield. On the one hand, water quality simulations allowed for the regionalization of greyWF at spatial scales under LULC scenarios. According to the critical threshold, HSI identified areas as less or more sustainable catchments. On the other hand, conservation practices simulated through the S2 + EbA scenario envisaged not only additional and viable best management practices (BMP), but also preventive decision-making at the headwaters of water supply systems.}, language = {en} } @misc{BaumbachSiegmundMittermeieretal.2017, author = {Baumbach, Lukas and Siegmund, Jonatan Frederik and Mittermeier, Magdalena and Donner, Reik Volker}, title = {Impacts of temperature extremes on European vegetation during the growing season}, series = {Postprints der Universit{\"a}t Potsdam : Mathematisch Naturwissenschaftliche Reihe}, journal = {Postprints der Universit{\"a}t Potsdam : Mathematisch Naturwissenschaftliche Reihe}, number = {642}, issn = {1866-8372}, doi = {10.25932/publishup-41801}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-418018}, pages = {4891 -- 4903}, year = {2017}, abstract = {Temperature is a key factor controlling plant growth and vitality in the temperate climates of the mid-latitudes like in vast parts of the European continent. Beyond the effect of average conditions, the timings and magnitudes of temperature extremes play a particularly crucial role, which needs to be better understood in the context of projected future rises in the frequency and/or intensity of such events. In this work, we employ event coincidence analysis (ECA) to quantify the likelihood of simultaneous occurrences of extremes in daytime land surface temperature anomalies (LSTAD) and the normalized difference vegetation index (NDVI). We perform this analysis for entire Europe based upon remote sensing data, differentiating between three periods corresponding to different stages of plant development during the growing season. In addition, we analyze the typical elevation and land cover type of the regions showing significantly large event coincidences rates to identify the most severely affected vegetation types. Our results reveal distinct spatio-temporal impact patterns in terms of extraordinarily large co-occurrence rates between several combinations of temperature and NDVI extremes. Croplands are among the most frequently affected land cover types, while elevation is found to have only a minor effect on the spatial distribution of corresponding extreme weather impacts. These findings provide important insights into the vulnerability of European terrestrial ecosystems to extreme temperature events and demonstrate how event-based statistics like ECA can provide a valuable perspective on environmental nexuses.}, language = {en} } @misc{BoettleRybskiKropp2016, author = {Boettle, Markus and Rybski, Diego and Kropp, J{\"u}rgen}, title = {Quantifying the effect of sea level rise and flood defence}, series = {Postprints der Universit{\"a}t Potsdam : Mathematisch-Naturwissenschaftliche Reihe}, journal = {Postprints der Universit{\"a}t Potsdam : Mathematisch-Naturwissenschaftliche Reihe}, number = {559}, issn = {1866-8372}, doi = {10.25932/publishup-41240}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-412405}, pages = {18}, year = {2016}, abstract = {In contrast to recent advances in projecting sea levels, estimations about the economic impact of sea level rise are vague. Nonetheless, they are of great importance for policy making with regard to adaptation and greenhouse-gas mitigation. Since the damage is mainly caused by extreme events, we propose a stochastic framework to estimate the monetary losses from coastal floods in a confined region. For this purpose, we follow a Peak-over-Threshold approach employing a Poisson point process and the Generalised Pareto Distribution. By considering the effect of sea level rise as well as potential adaptation scenarios on the involved parameters, we are able to study the development of the annual damage. An application to the city of Copenhagen shows that a doubling of losses can be expected from a mean sea level increase of only 11 cm. In general, we find that for varying parameters the expected losses can be well approximated by one of three analytical expressions depending on the extreme value parameters. These findings reveal the complex interplay of the involved parameters and allow conclusions of fundamental relevance. For instance, we show that the damage typically increases faster than the sea level rise itself. This in turn can be of great importance for the assessment of sea level rise impacts on the global scale. Our results are accompanied by an assessment of uncertainty, which reflects the stochastic nature of extreme events. While the absolute value of uncertainty about the flood damage increases with rising mean sea levels, we find that it decreases in relation to the expected damage.}, language = {en} } @misc{LaraNitzeGrosseetal.2018, author = {Lara, Mark J. and Nitze, Ingmar and Grosse, Guido and Martin, Philip and McGuire, A. David}, title = {Reduced arctic tundra productivity linked with landform and climate change interactions}, series = {Postprints der Universit{\"a}t Potsdam Mathematisch-Naturwissenschaftliche Reihe}, journal = {Postprints der Universit{\"a}t Potsdam Mathematisch-Naturwissenschaftliche Reihe}, number = {550}, issn = {1866-8372}, doi = {10.25932/publishup-42313}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-423132}, pages = {10}, year = {2018}, abstract = {Arctic tundra ecosystems have experienced unprecedented change associated with climate warming over recent decades. Across the Pan-Arctic, vegetation productivity and surface greenness have trended positively over the period of satellite observation. However, since 2011 these trends have slowed considerably, showing signs of browning in many regions. It is unclear what factors are driving this change and which regions/landforms will be most sensitive to future browning. Here we provide evidence linking decadal patterns in arctic greening and browning with regional climate change and local permafrost-driven landscape heterogeneity. We analyzed the spatial variability of decadal-scale trends in surface greenness across the Arctic Coastal Plain of northern Alaska (similar to 60,000 km(2)) using the Landsat archive (1999-2014), in combination with novel 30 m classifications of polygonal tundra and regional watersheds, finding landscape heterogeneity and regional climate change to be the most important factors controlling historical greenness trends. Browning was linked to increased temperature and precipitation, with the exception of young landforms (developed following lake drainage), which will likely continue to green. Spatiotemporal model forecasting suggests carbon uptake potential to be reduced in response to warmer and/or wetter climatic conditions, potentially increasing the net loss of carbon to the atmosphere, at a greater degree than previously expected.}, language = {en} } @misc{SiegmundWiedermannDongesetal.2016, author = {Siegmund, Jonatan Frederik and Wiedermann, Marc and Donges, Jonathan Friedemann and Donner, Reik Volker}, title = {Impact of temperature and precipitation extremes on the flowering dates of four German wildlife shrub species}, series = {Postprints der Universit{\"a}t Potsdam : Mathematisch-Naturwissenschaftliche Reihe}, journal = {Postprints der Universit{\"a}t Potsdam : Mathematisch-Naturwissenschaftliche Reihe}, number = {497}, issn = {1866-8372}, doi = {10.25932/publishup-40835}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-408352}, pages = {15}, year = {2016}, abstract = {Ongoing climate change is known to cause an increase in the frequency and amplitude of local temperature and precipitation extremes in many regions of the Earth. While gradual changes in the climatological conditions have already been shown to strongly influence plant flowering dates, the question arises if and how extremes specifically impact the timing of this important phenological phase. Studying this question calls for the application of statistical methods that are tailored to the specific properties of event time series. Here, we employ event coincidence analysis, a novel statistical tool that allows assessing whether or not two types of events exhibit similar sequences of occurrences in order to systematically quantify simultaneities between meteorological extremes and the timing of the flowering of four shrub species across Germany. Our study confirms previous findings of experimental studies by highlighting the impact of early spring temperatures on the flowering of the investigated plants. However, previous studies solely based on correlation analysis do not allow deriving explicit estimates of the strength of such interdependencies without further assumptions, a gap that is closed by our analysis. In addition to direct impacts of extremely warm and cold spring temperatures, our analysis reveals statistically significant indications of an influence of temperature extremes in the autumn preceding the flowering.}, language = {en} } @misc{MurawskiBuergerVorogushynetal.2016, author = {Murawski, Aline and B{\"u}rger, Gerd and Vorogushyn, Sergiy and Merz, Bruno}, title = {Can local climate variability be explained by weather patterns?}, series = {Postprints der Universit{\"a}t Potsdam : Mathematisch-Naturwissenschaftliche Reihe}, journal = {Postprints der Universit{\"a}t Potsdam : Mathematisch-Naturwissenschaftliche Reihe}, number = {525}, issn = {1866-8372}, doi = {10.25932/publishup-41015}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-410155}, pages = {24}, year = {2016}, abstract = {To understand past flood changes in the Rhine catchment and in particular the role of anthropogenic climate change in extreme flows, an attribution study relying on a proper GCM (general circulation model) downscaling is needed. A downscaling based on conditioning a stochastic weather generator on weather patterns is a promising approach. This approach assumes a strong link between weather patterns and local climate, and sufficient GCM skill in reproducing weather pattern climatology. These presuppositions are unprecedentedly evaluated here using 111 years of daily climate data from 490 stations in the Rhine basin and comprehensively testing the number of classification parameters and GCM weather pattern characteristics. A classification based on a combination of mean sea level pressure, temperature, and humidity from the ERA20C reanalysis of atmospheric fields over central Europe with 40 weather types was found to be the most appropriate for stratifying six local climate variables. The corresponding skill is quite diverse though, ranging from good for radiation to poor for precipitation. Especially for the latter it was apparent that pressure fields alone cannot sufficiently stratify local variability. To test the skill of the latest generation of GCMs from the CMIP5 ensemble in reproducing the frequency, seasonality, and persistence of the derived weather patterns, output from 15 GCMs is evaluated. Most GCMs are able to capture these characteristics well, but some models showed consistent deviations in all three evaluation criteria and should be excluded from further attribution analysis.}, language = {en} } @phdthesis{Petrow2009, author = {Petrow, Theresia}, title = {Floods in Germany : analyses of trends, seasonality and circulation patterns}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus-37392}, school = {Universit{\"a}t Potsdam}, year = {2009}, abstract = {Flood hazard estimations are conducted with a variety of methods. These include flood frequency analysis (FFA), hydrologic and hydraulic modelling, probable maximum discharges as well as climate scenarios. However, most of these methods assume stationarity of the used time series, i.e., the series must not exhibit trends. Against the background of climate change and proven significant trends in atmospheric circulation patterns, it is questionable whether these changes are also reflected in the discharge data. The aim of this PhD thesis is therefore to clarify, in a spatially-explicit manner, whether the available discharge data derived from selected German catchments exhibit trends. Concerning the flood hazard, the suitability of the currently used stationary FFA approaches is evaluated for the discharge data. Moreover, dynamics in atmospheric circulation patterns are studied and the link between trends in these patterns and discharges is investigated. To tackle this research topic, a number of different analyses are conducted. The first part of the PhD thesis comprises the study and trend test of 145 discharge series from catchments, which cover most of Germany for the period 1951-2002. The seasonality and trend pattern of eight flood indicators, such as maximum series and peak-over-threshold series, are analyzed in a spatially-explicit manner. Analyses are performed on different spatial scales: at the local scale, through gauge-specific analyses, and on the catchment-wide and basin scales. Besides the analysis of discharge series, data on atmospheric circulation patterns (CP) are an important source of information, upon which conclusions about the flood hazard can be drawn. The analyses of these circulation patterns (after Hess und Brezowsky) and the study of the link to peak discharges form the second part of the thesis. For this, daily data on the dominant CP across Europe are studied; these are represented by different indicators, which are tested for trend. Moreover, analyses are performed to extract flood triggering circulation patterns and to estimate the flood potential of CPs. Correlations between discharge series and CP indicators are calculated to assess a possible link between them. For this research topic, data from 122 meso-scale catchments in the period 1951-2002 are used. In a third part, the Mulde catchment, a mesoscale sub-catchment of the Elbe basin, is studied in more detail. Fifteen discharge series of different lengths in the period 1910-2002 are available for the seasonally differentiated analysis of the flood potential of CPs and flood influencing landscape parameters. For trend tests of discharge and CP data, different methods are used. The Mann-Kendall test is applied with a significance level of 10\%, ensuring statistically sound results. Besides the test of the entire series for trend, multiple time-varying trend tests are performed with the help of a resampling approach in order to better differentiate short-term fluctuations from long-lasting trends. Calculations of the field significance complement the flood hazard assessment for the studied regions. The present thesis shows that the flood hazard is indeed significantly increasing for selected regions in Germany during the winter season. Especially affected are the middle mountain ranges in Central Germany. This increase of the flood hazard is attributed to a longer persistence of selected CPs during winter. Increasing trends in summer floods are found in the Rhine and Danube catchments, decreasing trends in the Elbe and Weser catchments. Finally, a significant trend towards a reduced diversity of CPs is found causing fewer patterns with longer persistence to dominate the weather over Europe. The detailed study of the Mulde catchment reveals a flood regime with frequent low winter floods and fewer summer floods, which bear, however, the potential of becoming extreme. Based on the results, the use of instationary approaches for flood hazard estimation is recommended in order to account for the detected trends in many of the series. Through this methodology it is possible to directly consider temporal changes in flood series, which in turn reduces the possibility of large under- or overestimations of the extreme discharges, respectively.}, language = {en} } @phdthesis{Schaber2002, author = {Schaber, J{\"o}rg}, title = {Phenology in Germany in the 20th century : methods, analyses and models}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-0000532}, school = {Universit{\"a}t Potsdam}, year = {2002}, abstract = {Die L{\"a}nge der Vegetationsperiode (VP) spielt eine zentrale Rolle f{\"u}r die interannuelle Variation der Kohlenstoffspeicherung terrestrischer {\"O}kosysteme. Die Analyse von Beobachtungsdaten hat gezeigt, dass sich die VP in den letzten Jahrzehnten in den n{\"o}rdlichen Breiten verl{\"a}ngert hat. Dieses Ph{\"a}nomen wurde oft im Zusammenhang mit der globalen Erw{\"a}rmung diskutiert, da die Ph{\"a}nologie von der Temperatur beeinflusst wird. Die Analyse der Pflanzenph{\"a}nologie in S{\"u}ddeutschland im 20. Jahrhundert zeigte: - Die starke Verfr{\"u}hung der Fr{\"u}hjahrsphasen in dem Jahrzehnt vor 1999 war kein singul{\"a}res Ereignis im 20. Jahrhundert. Schon in fr{\"u}heren Dekaden gab es {\"a}hnliche Trends. Es konnten Perioden mit unterschiedlichem Trendverhalten identifiziert werden. - Es gab deutliche Unterschiede in den Trends von fr{\"u}hen und sp{\"a}ten Fr{\"u}hjahrsphasen. Die fr{\"u}hen Fr{\"u}hjahrsphasen haben sich stetig verfr{\"u}ht, mit deutlicher Verfr{\"u}hung zwischen 1931 und 1948, moderater Verfr{\"u}hung zwischen 1948 und 1984 und starker Verfr{\"u}hung zwischen 1984 und 1999. Die sp{\"a}ten Fr{\"u}hjahrsphasen hingegen, wechselten ihr Trendverhalten in diesen Perioden von einer Verfr{\"u}hung zu einer deutlichen Versp{\"a}tung wieder zu einer starken Verfr{\"u}hung. Dieser Unterschied in der Trendentwicklung zwischen fr{\"u}hen und sp{\"a}ten Fr{\"u}hjahrsphasen konnte auch f{\"u}r ganz Deutschland in den Perioden 1951 bis 1984 und 1984 bis 1999 beobachtet werden. Der bestimmende Einfluss der Temperatur auf die Fr{\"u}hjahrsphasen und ihr modifizierender Einfluss auf die Herbstphasen konnte best{\"a}tigt werden. Es zeigt sich jedoch, dass - die Ph{\"a}nologie bestimmende Funktionen der Temperatur nicht mit einem globalen j{\"a}hrlichen CO2 Signal korreliert waren, welches als Index f{\"u}r die globale Erw{\"a}rmung verwendet wurde - ein Index f{\"u}r grossr{\"a}umige regionale Zirkulationsmuster (NAO-Index) nur zu einem kleinen Teil die beobachtete ph{\"a}nologischen Variabilit{\"a}t erkl{\"a}ren konnte. Das beobachtete unterschiedliche Trendverhalten zwischen fr{\"u}hen und sp{\"a}ten Fr{\"u}hjahrsphasen konnte auf die unterschiedliche Entwicklung von M{\"a}rz- und Apriltemperaturen zur{\"u}ckgef{\"u}hrt werden. W{\"a}hrend sich die M{\"a}rztemperaturen im Laufe des 20. Jahrhunderts mit einer zunehmenden Variabilit{\"a}t in den letzten 50 Jahren stetig erh{\"o}ht haben, haben sich die Apriltemperaturen zwischen dem Ende der 1940er und Mitte der 1980er merklich abgek{\"u}hlt und dann wieder deutlich erw{\"a}rmt. Es wurde geschlussfolgert, dass die Verfr{\"u}hungen in der Fr{\"u}hjahrsph{\"a}nologie in den letzten Dekaden Teile multi-dekadischer Fluktuationen sind, welche sich nach Spezies und relevanter saisonaler Temperatur unterscheiden. Aufgrund dieser Fluktuationen konnte kein Zusammenhang mit einem globalen Erw{\"a}rmungsignal gefunden werden. Im Durchschnitt haben sich alle betrachteten Fr{\"u}hjahrsphasen zwischen 1951 und 1999 in Naturr{\"a}umen in Deutschland zwischen 5 und 20 Tagen verfr{\"u}ht. Ein starker Unterschied in der Verfr{\"u}hung zwischen fr{\"u}hen und sp{\"a}ten Fr{\"u}hjahrsphasen liegt an deren erw{\"a}hntem unterschiedlichen Verhalten. Die Blattverf{\"a}rbung hat sich zwischen 1951 und 1999 f{\"u}r alle Spezies versp{\"a}tet, aber nach 1984 im Durchschnitt verfr{\"u}ht. Die VP hat sich in Deutschland zwischen 1951 und 1999 um ca. 10 Tage verl{\"a}ngert. Es ist haupts{\"a}chlich die {\"A}nderung in den Fr{\"u}hjahrphasen, die zu einer {\"A}nderung in der potentiell absorbierten Strahlung (PAS) f{\"u}hrt. Dar{\"u}ber hinaus sind es die sp{\"a}ten Fr{\"u}hjahrsphasen, die pro Tag Verfr{\"u}hung st{\"a}rker profitieren, da die zus{\"a}tzlichen Tage l{\"a}nger undw{\"a}rmer sind als dies f{\"u}r die fr{\"u}hen Phasen der Fall ist. Um die relative {\"A}nderung in PAS im Vergleich der Spezies abzusch{\"a}tzen, m{\"u}ssen allerdings auch die Ver{\"a}nderungen in den Herbstphasen ber{\"u}cksichtigt werden. Der deutliche Unterschied zwischen fr{\"u}hen und sp{\"a}ten Fr{\"u}hjahrsphasen konnte durch die Anwendung einer neuen Methode zur Konstruktion von Zeitreihen herausgearbeitet werden. Der neue methodische Ansatz erlaubte die Ableitung verl{\"a}sslicher 100-j{\"a}hriger Zeitreihen und die Konstruktion von lokalen kombinierten Zeitreihen, welche die Datenverf{\"u}gbarkeit f{\"u}r die Modellentwicklung erh{\"o}hten. Ausser analysierten Protokollierungsfehlern wurden mikroklimatische, genetische und Beobachtereinfl{\"u}sse als Quellen von Unsicherheit in ph{\"a}nologischen Daten identifiziert. Ph{\"a}nologischen Beobachtungen eines Ortes k{\"o}nnen sch{\"a}tzungsweise 24 Tage um das parametrische Mittel schwanken.Dies unterst{\"u}tzt die 30-Tage Regel f{\"u}r die Detektion von Ausreissern. Neue Ph{\"a}nologiemodelle, die den Blattaustrieb aus t{\"a}glichen Temperaturreihen simulieren, wurden entwickelt. Diese Modelle basieren auf einfachen Interaktionen zwischen aktivierenden und hemmenden Substanzen, welche die Entwicklungsstadien einer Pflanze bestimmen. Im Allgemeinen konnten die neuen Modelle die Beobachtungsdaten besser simulieren als die klassischen Modelle. Weitere Hauptresultate waren: - Der Bias der klassischen Modelle, d.h. {\"U}bersch{\"a}tzung von fr{\"u}hen und Untersch{\"a}tzung von sp{\"a}ten Beobachtungen, konnte reduziert, aber nicht vollst{\"a}ndig eliminiert werden. - Die besten Modellvarianten f{\"u}r verschiedene Spezies wiesen darauf hin, dass f{\"u}r die sp{\"a}ten Fr{\"u}hjahrsphasen die Tagesl{\"a}nge eine wichtigere Rolle spielt als f{\"u}r die fr{\"u}hen Phasen. - Die Vernalisation spielte gegen{\"u}ber den Temperaturen kurz vor dem Blattaustrieb nur eine untergeordnete Rolle.}, language = {en} }