Institut für Geographie und Geologie
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Nach aktuellem Stand der Forschung ist die Dachbegrünung eine geeignete Klimaanpassungsmaßnahme, mit der die Folgen des rezenten Klimawandels in verdichteten und versiegelten Stadtgebieten abgeschwächt werden können. Vor dem Hintergrund schrumpfender Flächenreserven und wachsender Flächenkonkurrenz können auf Dächern alternative Flächenressourcen zur Expansion urbanen Grüns erschlossen werden. Zudem besitzt diese Begrünungsart vielfältige ökologische und ökonomische Vorteile (Kühlwirkung, Biodiversität, Wasserrückhaltung, Gebäudedämmung und -schutz). Mit Bebauungsplänen und Innenbereichssatzungen sowie Förderprogrammen und indirekter Förderung (gesplittete Abwassergebühren) stehen den Kommunen harte und weiche Instrumente zur Verfügung, um Gebäudeeigentümer für Dachbegrünungsmaßnahmen im Neubau, aber auch im Bestandsbau zu mobilisieren. Für eine Aktivierung bereits bestehender Dachflächen eignet sich besonders die Extensivbegrünung dank ihrer anspruchslosen Vegetation, des minimalen Pflegeaufwands sowie den geringeren statischen und formspezifischen Anforderungen an die Dachkonstruktion gegenüber der Intensivbegrünung. Auf Basis von Untersuchungen mit Fernerkundungsdaten und amtlichen Geodaten konnten für deutsche Groß- und Mittelstädte enorme Flächenpotentiale für die nachträgliche Dachbegrünung festgestellt werden. Zur Stadt Würzburg, in der als Hotspot des Klimawandels eine hohe Dringlichkeit für Klimaanpassungsmaßnahmen besteht, lagen bis dato keine Daten zu diesem Potential vor. Im Rahmen dieser Arbeit wurden Luftbilder, Höhendaten (LiDAR) und amtliche Gebäudeumriss-Daten in einem Geoinformationssystem (GIS) zu einer dreidimensionalen Dachlandschaft verarbeitet, hinsichtlich relevanter Begrünungskriterien (Neigung, Homogenität, Größe, Funktion) analysiert und in Form von Karten, Bildern und Statistiken ausgegeben. Für das konkrete Untersuchungsgebiet der stadtklimatisch besonders kritischen Stadtbezirke Altstadt und Sanderau konnte eine empirische Grundlage zur Quantifizierung der Potentialfläche geschaffen werden. Rund ein Drittel der über 5.000 untersuchten innerstädtischen Dächer kommen mit einer Fläche von über 300.000 m² für eine nachträgliche Begrünung in Betracht. Zudem wurden Aussagen zur städtebaulichen Qualifizierung (Denkmalschutz) dieser Flächen getroffen und die Aktivierbarkeit mit dem einschlägigen stadtplanerischem Begrünungsinstrumentarium (Förderprogramm, Satzung bzw. Bebauungsplan) bewertet. So konnten die für die Umsetzung der geeigneten Dachflächen nötigen Förderkosten auf Basis der geltenden Förderrichtlinie approximiert werden. Zudem wurde unter Verwendung amtlicher Baustatistik und einschlägiger Bebauungspläne ein zeitlicher Horizont geschätzt, bis zu welchem sich Eigentümer an die Vorgaben einer hypothetischen Dachbegrünungssatzung anpassen würden. Die Arbeit bietet Anreize für die Methodik geoinformatischer Analysen sowie für städteplanerische Analyse- und Handlungsmöglichkeiten. Natürlich kann die fernerkundliche Messung keine bautechnische Begutachtung vor Ort ersetzen, sie kann aber im Vorfeld einen Eindruck der teils versteckten Flächenreserven kostengünstig und flächendeckend verschaffen und zudem die Möglichkeit darauf aufbauender Untersuchungen der ökologischen oder städtebaulichen Wirkung eröffnen.
Sea level rise contribution from the Antarctic ice sheet is influenced by changes in glacier and ice shelf front position. Still, little is known about seasonal glacier and ice shelf front fluctuations as the manual delineation of calving fronts from remote sensing imagery is very time-consuming. The major challenge of automatic calving front extraction is the low contrast between floating glacier and ice shelf fronts and the surrounding sea ice. Additionally, in previous decades, remote sensing imagery over the often cloud-covered Antarctic coastline was limited. Nowadays, an abundance of Sentinel-1 imagery over the Antarctic coastline exists and could be used for tracking glacier and ice shelf front movement. To exploit the available Sentinel-1 data, we developed a processing chain allowing automatic extraction of the Antarctic coastline from Seninel-1 imagery and the creation of dense time series to assess calving front change. The core of the proposed workflow is a modified version of the deep learning architecture U-Net. This convolutional neural network (CNN) performs a semantic segmentation on dual-pol Sentinel-1 data and the Antarctic TanDEM-X digital elevation model (DEM). The proposed method is tested for four training and test areas along the Antarctic coastline. The automatically extracted fronts deviate on average 78 m in training and 108 m test areas. Spatial and temporal transferability is demonstrated on an automatically extracted 15-month time series along the Getz Ice Shelf. Between May 2017 and July 2018, the fronts along the Getz Ice Shelf show mostly an advancing tendency with the fastest moving front of DeVicq Glacier with 726 ± 20 m/yr.
This study investigates synthetic aperture radar (SAR) time series of the Sentinel-1 mission acquired over the Atacama Desert, Chile, between March 2015 and December 2018. The contribution analyzes temporal and spatial variations of Sentinel-1 interferometric SAR (InSAR) coherence and exemplarily illustrates factors that are responsible for observed signal differences. The analyses are based on long temporal baselines (365–1090 days) and temporally dense time series constructed with short temporal baselines (12–24 days). Results are compared to multispectral data of Sentinel-2, morphometric features of the digital elevation model (DEM) TanDEM-X WorldDEM™, and to a detailed governmental geographic information system (GIS) dataset of the local hydrography. Sentinel-1 datasets are suited for generating extensive, nearly seamless InSAR coherence mosaics covering the entire Atacama Desert (>450 × 1100 km) at a spatial resolution of 20 × 20 meter per pixel. Temporal baselines over several years lead only to very minor decorrelation, indicating a very high signal stability of C-Band in this region, especially in the hyperarid uplands between the Coastal Cordillera and the Central Depression. Signal decorrelation was associated with certain types of surface cover (e.g., water or aeolian deposits) or with actual surface dynamics (e.g., anthropogenic disturbance (mining) or fluvial activity and overland flow). Strong rainfall events and fluvial activity in the periods 2015 to 2016 and 2017 to 2018 caused spatial patterns with significant signal decorrelation; observed linear coherence anomalies matched the reference channel network and indicated actual episodic and sporadic discharge events. In the period 2015–2016, area-wide loss of coherence appeared as strip-like patterns of more than 80 km length that matched the prevailing wind direction. These anomalies, and others observed in that period and in the period 2017–2018, were interpreted to be caused by overland flow of high magnitude, as their spatial location matched well with documented heavy rainfall events that showed cumulative precipitation amounts of more than 20 mm.
Air temperatures in the Arctic have increased substantially over the last decades, which has extensively altered the properties of the land surface. Capturing the state and dynamics of Land Surface Temperatures (LSTs) at high spatial detail is of high interest as LST is dependent on a variety of surficial properties and characterizes the land–atmosphere exchange of energy. Accordingly, this study analyses the influence of different physical surface properties on the long-term mean of the summer LST in the Arctic Mackenzie Delta Region (MDR) using Landsat 30 m-resolution imagery between 1985 and 2018 by taking advantage of the cloud computing capabilities of the Google Earth Engine. Multispectral indices, including the Normalized Difference Vegetation Index (NDVI), Normalized Difference Water Index (NDWI) and Tasseled Cap greenness (TCG), brightness (TCB), and wetness (TCW) as well as topographic features derived from the TanDEM-X digital elevation model are used in correlation and multiple linear regression analyses to reveal their influence on the LST. Furthermore, surface alteration trends of the LST, NDVI, and NDWI are revealed using the Theil-Sen (T-S) regression method. The results indicate that the mean summer LST appears to be mostly influenced by the topographic exposition as well as the prevalent moisture regime where higher evapotranspiration rates increase the latent heat flux and cause a cooling of the surface, as the variance is best explained by the TCW and northness of the terrain. However, fairly diverse model outcomes for different regions of the MDR (R2 from 0.31 to 0.74 and RMSE from 0.51 °C to 1.73 °C) highlight the heterogeneity of the landscape in terms of influential factors and suggests accounting for a broad spectrum of different factors when modeling mean LSTs. The T-S analysis revealed large-scale wetting and greening trends with a mean decadal increase of the NDVI/NDWI of approximately +0.03 between 1985 and 2018, which was mostly accompanied by a cooling of the land surface given the inverse relationship between mean LSTs and vegetation and moisture conditions. Disturbance through wildfires intensifies the surface alterations locally and lead to significantly cooler LSTs in the long-term compared to the undisturbed surroundings.
Periglacial environments are facing dramatic changes. Warming air temperatures and strong snow cover variations fundamentally affect landforming processes in this hotspot region of Climate Change. But before we can assess the response of landform development to a changing climate, we need to enhance our understanding of the internal structure of those landforms. Within this study, a broad scope of landform types from alpine and subarctic regions is investigated: rock glaciers, solifluction lobes, palsas and patterned ground. By using the geophysical methods 2-D and 3-D ERI, as well as GPR surveying, structural differences and similarities between landform units of different or the same landform types are highlighted. This enables a reconstruction of their past and a projection of their future development.
We analyze the processing of cereals and its role at Early Neolithic Göbekli Tepe, southeastern Anatolia (10th / 9th millennium BC), a site that has aroused much debate in archaeological discourse. To date, only zooarchaeological evidence has been discussed in regard to the subsistence of its builders. Göbekli Tepe consists of monumental round to oval buildings, erected in an earlier phase, and smaller rectangular buildings, built around them in a partially contemporaneous and later phase. The monumental buildings are best known as they were in the focus of research. They are around 20 m in diameter and have stone pillars that are up to 5.5 m high and often richly decorated. The rectangular buildings are smaller and–in some cases–have up to 2 m high, mostly undecorated, pillars. Especially striking is the number of tools related to food processing, including grinding slabs/bowls, handstones, pestles, and mortars, which have not been studied before. We analyzed more than 7000 artifacts for the present contribution. The high frequency of artifacts is unusual for contemporary sites in the region. Using an integrated approach of formal, experimental, and macro- / microscopical use-wear analyses we show that Neolithic people at Göbekli Tepe have produced standardized and efficient grinding tools, most of which have been used for the processing of cereals. Additional phytolith analysis confirms the massive presence of cereals at the site, filling the gap left by the weakly preserved charred macro-rests. The organization of work and food supply has always been a central question of research into Göbekli Tepe, as the construction and maintenance of the monumental architecture would have necessitated a considerable work force. Contextual analyses of the distribution of the elements of the grinding kit on site highlight a clear link between plant food preparation and the rectangular buildings and indicate clear delimitations of working areas for food production on the terraces the structures lie on, surrounding the circular buildings. There is evidence for extensive plant food processing and archaeozoological data hint at large-scale hunting of gazelle between midsummer and autumn. As no large storage facilities have been identified, we argue for a production of food for immediate use and interpret these seasonal peaks in activity at the site as evidence for the organization of large work feasts.
The heavily debris-covered Inylchek glaciers in the central Tian Shan are the largest glacier system in the Tarim catchment. It is assumed that almost 50% of the discharge of Tarim River are provided by glaciers. For this reason, climatic changes, and thus changes in glacier mass balance and glacier discharge are of high impact for the whole region. In this study, a conceptual hydrological model able to incorporate discharge from debris-covered glacier areas is presented. To simulate glacier melt and subsequent runoff in the past (1970/1971–1999/2000) and future (2070/2071–2099/2100), meteorological input data were generated based on ECHAM5/MPI-OM1 global climate model projections. The hydrological model HBV-LMU was calibrated by an automatic calibration algorithm using runoff and snow cover information as objective functions. Manual fine-tuning was performed to avoid unrealistic results for glacier mass balance. The simulations show that annual runoff sums will increase significantly under future climate conditions. A sensitivity analysis revealed that total runoff does not decrease until the glacier area is reduced by 43%. Ice melt is the major runoff source in the recent past, and its contribution will even increase in the coming decades. Seasonal changes reveal a trend towards enhanced melt in spring, but a change from a glacial-nival to a nival-pluvial runoff regime will not be reached until the end of this century.
Der Begriff der ‚Verträglichkeit‘ spielt eine zentrale Rolle für die politisch-planerische Steuerung von Einzelhandels- und Stadtentwicklung. Besonders kontrovers wird v.a. seit Mitte der 1990er Jahre die Frage der ‚Verträglichkeit‘ innerstädtischer Einkaufszentren diskutiert. Die vorliegende Studie untersucht anhand ehemaliger Shopping-Center-Planungen für die Mainzer Innenstadt, wie der Verträglichkeitsbegriff in der Praxis gefüllt wird und welche planerischen Steuerungslogiken hieraus hervorgehen. Die Arbeit setzt sich kritisch mit der Frage auseinander, auf welche normativen Wissensordnungen über den innerstädtischen Raum sich die politisch-planerische Bearbeitung der Verträglichkeitsproblematik stützt und welche Machtwirkungen hiermit einhergehen.
Ausgehend von einer poststrukturalistisch inspirierten, diskurstheoretischen Perspektive verschiebt die Studie damit den geographischen Blick auf die Verträglichkeitsfrage: Was ‚Verträglichkeit‘ für die politisch-planerische Praxis konkret bedeutet, ob ein geplantes Einkaufszentrum als ‚(innenstadt)verträglich‘ gelten kann bzw. welche konkreten Interventionen dies erfordert, hängt demzufolge weniger von objektiven ökonomischen, räumlichen oder städtebaulichen Gegebenheiten ab – vielmehr zeigt die Studie, dass eine ganzen Reihe von Techniken raumbezogener Wissensproduktion mobilisiert werden müssen, damit die Verträglichkeitsfrage überhaupt als eine objektivierbare Frage erscheinen kann.
Inadequate land management and agricultural activities have largely resulted in land degradation in Burkina Faso. The nationwide governmental and institutional driven implementation and adoption of soil and water conservation measures (SWCM) since the early 1960s, however, is expected to successively slow down the degradation process and to increase the agricultural output. Even though relevant measures have been taken, only a few studies have been conducted to quantify their effect, for instance, on soil erosion and environmental restoration. In addition, a comprehensive summary of initiatives, implementation strategies, and eventually region-specific requirements for adopting different SWCM is missing. The present study therefore aims to review the different SWCM in Burkina Faso and implementation programs, as well as to provide information on their effects on environmental restoration and agricultural productivity. This was achieved by considering over 143 studies focusing on Burkina Faso’s experience and research progress in areas of SWCM and soil erosion. SWCM in Burkina Faso have largely resulted in an increase in agricultural productivity and improvement in food security. Finally, this study aims at supporting the country’s informed decision-making for extending already existing SWCM and for deriving further implementation strategies.
Forest ecosystems fulfill a whole host of ecosystem functions that are essential for life on our planet. However, an unprecedented level of anthropogenic influences is reducing the resilience and stability of our forest ecosystems as well as their ecosystem functions. The relationships between drivers, stress, and ecosystem functions in forest ecosystems are complex, multi-faceted, and often non-linear, and yet forest managers, decision makers, and politicians need to be able to make rapid decisions that are data-driven and based on short and long-term monitoring information, complex modeling, and analysis approaches. A huge number of long-standing and standardized forest health inventory approaches already exist, and are increasingly integrating remote-sensing based monitoring approaches. Unfortunately, these approaches in monitoring, data storage, analysis, prognosis, and assessment still do not satisfy the future requirements of information and digital knowledge processing of the 21st century. Therefore, this paper discusses and presents in detail five sets of requirements, including their relevance, necessity, and the possible solutions that would be necessary for establishing a feasible multi-source forest health monitoring network for the 21st century. Namely, these requirements are: (1) understanding the effects of multiple stressors on forest health; (2) using remote sensing (RS) approaches to monitor forest health; (3) coupling different monitoring approaches; (4) using data science as a bridge between complex and multidimensional big forest health (FH) data; and (5) a future multi-source forest health monitoring network. It became apparent that no existing monitoring approach, technique, model, or platform is sufficient on its own to monitor, model, forecast, or assess forest health and its resilience. In order to advance the development of a multi-source forest health monitoring network, we argue that in order to gain a better understanding of forest health in our complex world, it would be conducive to implement the concepts of data science with the components: (i) digitalization; (ii) standardization with metadata management after the FAIR (Findability, Accessibility, Interoperability, and Reusability) principles; (iii) Semantic Web; (iv) proof, trust, and uncertainties; (v) tools for data science analysis; and (vi) easy tools for scientists, data managers, and stakeholders for decision-making support.