TY - THES A1 - Antonoglou, Nikolaos T1 - GNSS-based remote sensing: Innovative observation of key hydrological parameters in the Central Andes T1 - GNSS-basierte Fernerkundung: Innovative Beobachtung der wichtigsten hydrologischen Parameter in den zentralen Anden N2 - The Central Andean region is characterized by diverse climate zones with sharp transitions between them. In this work, the area of interest is the South-Central Andes in northwestern Argentina that borders with Bolivia and Chile. The focus is the observation of soil moisture and water vapour with Global Navigation Satellite System (GNSS) remote-sensing methodologies. Because of the rapid temporal and spatial variations of water vapour and moisture circulations, monitoring this part of the hydrological cycle is crucial for understanding the mechanisms that control the local climate. Moreover, GNSS-based techniques have previously shown high potential and are appropriate for further investigation. This study includes both logistic-organization effort and data analysis. As for the prior, three GNSS ground stations were installed in remote locations in northwestern Argentina to acquire observations, where there was no availability of third-party data. The methodological development for the observation of the climate variables of soil moisture and water vapour is independent and relies on different approaches. The soil-moisture estimation with GNSS reflectometry is an approximation that has demonstrated promising results, but it has yet to be operationally employed. Thus, a more advanced algorithm that exploits more observations from multiple satellite constellations was developed using data from two pilot stations in Germany. Additionally, this algorithm was slightly modified and used in a sea-level measurement campaign. Although the objective of this application is not related to monitoring hydrological parameters, its methodology is based on the same principles and helps to evaluate the core algorithm. On the other hand, water-vapour monitoring with GNSS observations is a well-established technique that is utilized operationally. Hence, the scope of this study is conducting a meteorological analysis by examining the along-the-zenith air-moisture levels and introducing indices related to the azimuthal gradient. The results of the experiments indicate higher-quality soil moisture observations with the new algorithm. Furthermore, the analysis using the stations in northwestern Argentina illustrates the limits of this technology because of varying soil conditions and shows future research directions. The water-vapour analysis points out the strong influence of the topography on atmospheric moisture circulation and rainfall generation. Moreover, the GNSS time series allows for the identification of seasonal signatures, and the azimuthal-gradient indices permit the detection of main circulation pathways. N2 - Die Zentralanden sind eine Region, in der verschiedene Klimazonen nur durch kurze Übergänge gekennzeichnet sind. Der geographische Schwerpunkt dieser Arbeit liegt in den südlichen Zentralanden im Grenzgebiet zwischen Argentinien, Bolivien und Chile, und der wissenschaftliche Schwerpunkt ist in der Überwachung der Bodenfeuchtigkeit und des Wasserdampfs mit Fernerkundungsmethoden des Globales Navigationssatellitensystem (Global Navigation Satellite System - GNSS) angesiedelt. Wegen der raschen zeitlichen und räumlichen Schwankungen des Wasserdampfs und den damit häufig verbundenen Niederschlägen und der Feuchtigkeitszirkulation ist die Beobachtung dieses Teils des hydrologischen Zyklus von entscheidender Bedeutung für das Verständnis des lokalen Klimas. Darüber hinaus haben GNSS-gestützte Techniken in anderen Studien bereits ein hohes Potenzial gezeigt, erfordern aber in einigen Bereichen weitere Untersuchungen. Diese Studie umfasst sowohl logistischen Aufwand als auch Datenanalyse. Dazu wurden drei GNSS-Bodenstationen in abgelegenen Orten im Nordwesten Argentiniens installiert, um Beobachtungen zu sammeln, da dort keine externen Daten verfügbar waren. Die methodische Entwicklung für die Beobachtung der Klimavariablen Bodenfeuchtigkeit und Wasserdampfs ist unabhängig voneinander. Die Messung der Bodenfeuchte mit Hilfe der GNSS-Reflektometrie ist eine Annäherung, die vielversprechende Ergebnisse erbracht hat, aber bisher noch nicht operationell eingesetzt wurde. Daher wurde ein fortschrittlicherer Algorithmus entwickelt, der Beobachtungen von mehreren Satellitenkonstellationen nutzt und unter anderem Daten von zwei Pilotstationen in Deutschland verwendet. Außerdem wurde dieser Algorithmus leicht modifiziert und in einer Meeresspiegelmesskampagne eingesetzt. Obwohl diese Andwendung nicht direkt mit der Überwachung hydrologischer Parameter zusammenhängt, basiert die Methodik auf denselben Prinzipien und hilft bei der Bewertung des entwickelten Algorithmus. Auf der anderen Seite ist die Überwachung des Wasserdampfs mit GNSS-Beobachtungen eine anerkannte Technik, die in der Praxis bereits seit mehreren Jahren eingesetzt wird. Diese Studie befasst sich daher mit der Durchführung einer meteorologischen Analyse der Luftfeuchtigkeitswerte entlang des Zenits und der Entwicklung von klimatischen Indizes, die sich auf den azimutalen Gradienten beziehen. Die Ergebnisse der Experimente zeigen, dass die Qualität der Bodenfeuchtebeobachtungen mit dem neuen Algorithmus vielversprechend und besser sind. Darüber hinaus zeigt die Analyse anhand der Stationen im nordwesten Argentiniens die Grenzen dieser Technologie aufgrund der sehr unterschiedlichen Bodenbedingungen auf und gibt mögliche zukünftige Forschungsrichtung an. Die Wasserdampfanalyse verdeutlicht den Einfluss der Topographie auf die Luftfeuchtigkeit und der Regenmenge. Außerdem ermöglichen die GNSS-Zeitreihen die Identifizierung der jahreszeitlichen Signaturen, und Messungen der azimutal Gradienten erlauben die Erkennung der wichtigsten Zirkulationswege. KW - remote sensing KW - GNSS KW - GPS KW - water vapour KW - soil moisture KW - Central Andes KW - zentrale Anden KW - globales Navigationssatellitensystem KW - globales Positionsbestimmungssystem KW - Fernerkundung KW - Bodenfeuchtigkeit KW - Wasserdampf Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-628256 ER - TY - JOUR A1 - de Figueiredo, Jose Vidal A1 - de Araujo, Jose Carlos A1 - Medeiros, Pedro Henrique Augusto A1 - Costa, Alexandre C. T1 - Runoff initiation in a preserved semiarid Caatinga small watershed, Northeastern Brazil JF - Hydrological processes N2 - This study analyses some hydrological driving forces and their interrelation with surface-flow initiation in a semiarid Caatinga basin (12km(2)), Northeastern Brazil. During the analysis period (2005 - 2014), 118 events with precipitation higher than 10mm were monitored, providing 45 events with runoff, 25 with negligible runoff and 49 without runoff. To verify the dominant processes, 179 on-site measurements of saturated hydraulic conductivity (Ksat) were conducted. The results showed that annual runoff coefficient lay below 0.5% and discharge at the outlet has only occurred four days per annum on average, providing an insight to the surface-water scarcity of the Caatinga biome. The most relevant variables to explain runoff initiation were total precipitation and maximum 60-min rainfall intensity (I-60). Runoff always occurred when rainfall surpassed 31mm, but it never occurred for rainfall below 14mm or for I-60 below 12mmh(-1). The fact that the duration of the critical intensity is similar to the basin concentration time (65min) and that the infiltration threshold value approaches the river-bank saturated hydraulic conductivity support the assumption that Hortonian runoff prevails. However, none of the analysed variables (total or precedent precipitation, soil moisture content, rainfall intensities or rainfall duration) has been able to explain the runoff initiation in all monitored events: the best criteria, e.g. failed to explain 27% of the events. It is possible that surface-flow initiation in the Caatinga biome is strongly influenced by the root-system dynamics, which changes macro-porosity status and, therefore, initial abstraction. Copyright (c) 2016 John Wiley & Sons, Ltd. KW - hydraulic conductivity KW - soil moisture KW - root system KW - semi-arid KW - Caatinga KW - connectivity Y1 - 2016 U6 - https://doi.org/10.1002/hyp.10801 SN - 0885-6087 SN - 1099-1085 VL - 30 SP - 2390 EP - 2400 PB - Wiley CY - Hoboken ER - TY - JOUR A1 - Graeff, T. A1 - Zehe, E. A1 - Blume, T. A1 - Francke, Till A1 - Schroeder, B. T1 - Predicting event response in a nested catchment with generalized linear models and a distributed watershed model JF - HYDROLOGICAL PROCESSES N2 - This study focuses on the prediction of event-based runoff coefficients (an important descriptor of flood events) for nested catchments up to an area of 50?km(2) in the Eastern Ore Mountains. The four main objectives of the study are (i) the prediction of runoff coefficients with the statistical method of generalized linear models, (ii) the comparison of the results of the linear models with estimates of a distributed conceptual model, (iii) the comparison of the dynamics of observed soil moisture and simulated saturation deficit of the hydrological model and (iv) the analysis of the relationship between runoff coefficient and observed and simulated wetness. Different predictor variables were selected to describe the runoff coefficient and were differentiated into variables describing the catchment’s antecedent wetness and meteorological forcing. The best statistical model was estimated in a stepwise approach on the basis of hierarchical partitioning, an exhaustive search algorithm and model validation with jackknifing. We then applied the rainfall runoff model WaSiM ETH to predict the runoff processes for the two larger catchments. Locally measured small-scale soil moisture (acquired at a scale of four to five magnitudes smaller than the catchment) was identified as one of the key predictor variables for the estimation of the runoff coefficient with the general linear model. It was found that the relationship betweenobserved and simulated (using WaSiM ETH) wetness is strongly hysteretic. The runoff coefficients derived from the rainfall runoff simulations systematically underestimate the observed values. Copyright (C) 2012 John Wiley & Sons, Ltd. KW - runoff coefficient KW - soil moisture KW - antecedent wetness KW - GLM KW - nested catchment Y1 - 2012 U6 - https://doi.org/10.1002/hyp.8463 SN - 0885-6087 SN - 1099-1085 VL - 26 IS - 24 SP - 3749 EP - 3769 PB - WILEY-BLACKWELL CY - HOBOKEN ER - TY - THES A1 - Hohenbrink, Tobias Ludwig T1 - Turning a problem into a solution: heterogeneities in soil hydrology T1 - Ein Problem zur Lösung machen: Heterogenitäten in der Bodenhydrologie N2 - It is commonly recognized that soil moisture exhibits spatial heterogeneities occurring in a wide range of scales. These heterogeneities are caused by different factors ranging from soil structure at the plot scale to land use at the landscape scale. There is an urgent need for effi-cient approaches to deal with soil moisture heterogeneity at large scales, where manage-ment decisions are usually made. The aim of this dissertation was to test innovative ap-proaches for making efficient use of standard soil hydrological data in order to assess seep-age rates and main controls on observed hydrological behavior, including the role of soil het-erogeneities. As a first step, the applicability of a simplified Buckingham-Darcy method to estimate deep seepage fluxes from point information of soil moisture dynamics was assessed. This was done in a numerical experiment considering a broad range of soil textures and textural het-erogeneities. The method performed well for most soil texture classes. However, in pure sand where seepage fluxes were dominated by heterogeneous flow fields it turned out to be not applicable, because it simply neglects the effect of water flow heterogeneity. In this study a need for new efficient approaches to handle heterogeneities in one-dimensional water flux models was identified. As a further step, an approach to turn the problem of soil moisture heterogeneity into a solu-tion was presented: Principal component analysis was applied to make use of the variability among soil moisture time series for analyzing apparently complex soil hydrological systems. It can be used for identifying the main controls on the hydrological behavior, quantifying their relevance, and describing their particular effects by functional averaged time series. The ap-proach was firstly tested with soil moisture time series simulated for different texture classes in homogeneous and heterogeneous model domains. Afterwards, it was applied to 57 mois-ture time series measured in a multifactorial long term field experiment in Northeast Germa-ny. The dimensionality of both data sets was rather low, because more than 85 % of the total moisture variance could already be explained by the hydrological input signal and by signal transformation with soil depth. The perspective of signal transformation, i.e. analyzing how hydrological input signals (e.g., rainfall, snow melt) propagate through the vadose zone, turned out to be a valuable supplement to the common mass flux considerations. Neither different textures nor spatial heterogeneities affected the general kind of signal transfor-mation showing that complex spatial structures do not necessarily evoke a complex hydro-logical behavior. In case of the field measured data another 3.6% of the total variance was unambiguously explained by different cropping systems. Additionally, it was shown that dif-ferent soil tillage practices did not affect the soil moisture dynamics at all. The presented approach does not require a priori assumptions about the nature of physical processes, and it is not restricted to specific scales. Thus, it opens various possibilities to in-corporate the key information from monitoring data sets into the modeling exercise and thereby reduce model uncertainties. N2 - Es ist allgemein anerkannt, dass Bodenfeuchte auf verschiedenen Raumskalen räumliche Heterogenitäten aufweist. Diese Heterogenitäten werden durch verschiedene Faktoren verursacht, die auf den unterschiedlichen Skalen wirken. Dies können z.B. die Bodenstruktur auf Plotskala oder die Landnutzung auf Landschaftsskala sein. Es werden dringend effiziente Ansätze benötigt, um mit den Heterogenitäten der Bodenfeuchte umzugehen. Dies gilt be-sonders für große Skalen, auf denen in der Regel weitreichende Managemententscheidun-gen getroffen werden. Das Ziel dieser Dissertation war es, effiziente Methoden zu testen, die es ermöglichen auf Basis bodenhydrologischer Daten sowohl Sickerwasserraten als auch die Haupteinflussfaktoren der Bodenfeuchtedynamik zu bestimmen. Dies bezieht Effekte von Bodenheterogenitäten mit ein. In einem ersten Schritt wurde die Eignung einer vereinfachten Buckingham-Darcy Methode zur Abschätzung von Sickerwasserflüssen auf Grundlage punktuell gemessener Zeitreihen der Bodenfeuchte untersucht. Hierzu wurde eine Simulationsstudie durchgeführt, in der ein breites Spektrum an Bodentexturen und Texturheterogenitäten berücksichtigt wurde. Die Methode lieferte gute Ergebnisse für die meisten Texturklassen. In reinem Sand jedoch stell-te sie sich als nicht anwendbar heraus, da hier Sickerwasserflüsse von heterogenen Fließfel-dern dominiert wurden. In dieser Studie wurde ein Bedarf an neuen effizienten Ansätzen für den Umgang mit Heterogenitäten in eindimensionalen Wasserflussmodellen identifiziert. In einem weiteren Schritt wurde ein Ansatz vorgestellt, um aus dem Problem der Boden-feuchteheterogenität eine Lösung zu machen: In einer Hauptkomponentenanalyse wurde die Variabilität zwischen Bodenfeuchtezeitreihen genutzt, um die wahre Komplexität bo-denhydrologischer Systeme zu analysieren. Auf diesem Weg ist es möglich die Haupteinfluss-faktoren des hydrologischen Verhaltens zu identifizieren, ihre Relevanz zu quantifizieren und ihre jeweiligen Effekte als funktional gemittelte Zeitreihen zu beschreiben. Der Ansatz wurde zunächst mit simulierten Bodenfeuchtezeitreihen für unterschiedliche Texturklassen im ho-mogenen und heterogenen Fall getestet. Anschließend wurde die Methode auf 57 Boden-feuchtezeitreihen angewendet, die in einem Langzeitfeldexperiment in Nordostdeutschland gemessen wurden. Die Dimensionalität beider Datensätze war gering, da mehr als 85 % der gesamten Boden-feuchtevarianz bereits durch das hydrologische Eingangssignal und die Transformation dieses Signals mit zunehmender Bodentiefe erklärt werden konnten. Analysen der Signaltransfor-mation haben sich als wertvolle Ergänzung zu den weit verbreiteten Massenflussbetrachtun-gen herausgestellt. Hierbei wird untersucht, wie sich hydrologische Eingangssignale (z.B. Nie-derschlag oder Schneeschmelze) in der vadosen Zone fortpflanzen. Die generellen Muster der Signaltransformation wurden weder durch verschiedene Bodentexturen noch durch räumliche Heterogeneitäten beeinfluss. Dies zeigt, dass komplexe räumliche Strukturen nicht zwangsläufig ein komplexes hydrologisches Verhalten hervorrufen. Im Fall der Felddaten wurden weitere 3,6 % der Gesamtvarianz durch verschiedene Fruchtfolgen erklärt. Darüber hinaus konnte gezeigt werden, dass die Bodenbearbeitung keinen Einfluss auf die Boden-feuchtedynamik hatte. Der vorgestellte Ansatz erfordert keine Vorannahmen über physikalische Prozesse und ist nicht auf eine bestimmte Skala begrenzt. Dadurch ergeben sich viele Möglichkeiten, wichtige Informationen aus Monitoringdatensätzen in die Modellbildung einzubeziehen und damit Modell-unsicherheiten zu verringern. KW - soil hydrology KW - soil heterogeneity KW - soil moisture KW - deep seepage KW - time series analysis KW - transformation of hydrological signals KW - Bodenhydrologie KW - Bodenheterogenität KW - Bodenfeuchte KW - Tiefenversickerung KW - Zeitreihenanalyse KW - Transformation hydrologischer Signale Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-101485 ER - TY - GEN A1 - Jackisch, Conrad A1 - Angermann, Lisa A1 - Allroggen, Niklas A1 - Sprenger, Matthias A1 - Blume, Theresa A1 - Tronicke, Jens A1 - Zehe, Erwin T1 - Form and function in hillslope hydrology BT - in situ imaging and characterization of flow-relevant structures T2 - Postprints der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe N2 - The study deals with the identification and characterization of rapid subsurface flow structures through pedo- and geo-physical measurements and irrigation experiments at the point, plot and hillslope scale. Our investigation of flow-relevant structures and hydrological responses refers to the general interplay of form and function, respectively. To obtain a holistic picture of the subsurface, a large set of different laboratory, exploratory and experimental methods was used at the different scales. For exploration these methods included drilled soil core profiles, in situ measurements of infiltration capacity and saturated hydraulic conductivity, and laboratory analyses of soil water retention and saturated hydraulic conductivity. The irrigation experiments at the plot scale were monitored through a combination of dye tracer, salt tracer, soil moisture dynamics, and 3-D time-lapse ground penetrating radar (GPR) methods. At the hillslope scale the subsurface was explored by a 3-D GPR survey. A natural storm event and an irrigation experiment were monitored by a dense network of soil moisture observations and a cascade of 2-D time-lapse GPR "trenches". We show that the shift between activated and non-activated state of the flow paths is needed to distinguish structures from overall heterogeneity. Pedo-physical analyses of point-scale samples are the basis for sub-scale structure inference. At the plot and hillslope scale 3-D and 2-D time-lapse GPR applications are successfully employed as non-invasive means to image subsurface response patterns and to identify flow-relevant paths. Tracer recovery and soil water responses from irrigation experiments deliver a consistent estimate of response velocities. The combined observation of form and function under active conditions provides the means to localize and characterize the structures (this study) and the hydrological processes (companion study Angermann et al., 2017, this issue). T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 665 KW - Ground Penetrating Radar KW - preferential flow KW - solute transport KW - Catchment Hydrology KW - multiple scales KW - soil moisture KW - water content KW - tracer KW - field KW - model Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-419188 SN - 1866-8372 IS - 665 ER - TY - THES A1 - Jagdhuber, Thomas T1 - Soil parameter retrieval under vegetation cover using SAR polarimetry T1 - Bestimmung von Bodenparametern unter Vegetation mit Hilfe von SAR Polarimetrie N2 - Soil conditions under vegetation cover and their spatial and temporal variations from point to catchment scale are crucial for understanding hydrological processes within the vadose zone, for managing irrigation and consequently maximizing yield by precision farming. Soil moisture and soil roughness are the key parameters that characterize the soil status. In order to monitor their spatial and temporal variability on large scales, remote sensing techniques are required. Therefore the determination of soil parameters under vegetation cover was approached in this thesis by means of (multi-angular) polarimetric SAR acquisitions at a longer wavelength (L-band, lambda=23cm). In this thesis, the penetration capabilities of L-band are combined with newly developed (multi-angular) polarimetric decomposition techniques to separate the different scattering contributions, which are occurring in vegetation and on ground. Subsequently the ground components are inverted to estimate the soil characteristics. The novel (multi-angular) polarimetric decomposition techniques for soil parameter retrieval are physically-based, computationally inexpensive and can be solved analytically without any a priori knowledge. Therefore they can be applied without test site calibration directly to agricultural areas. The developed algorithms are validated with fully polarimetric SAR data acquired by the airborne E-SAR sensor of the German Aerospace Center (DLR) for three different study areas in Germany. The achieved results reveal inversion rates up to 99% for the soil moisture and soil roughness retrieval in agricultural areas. However, in forested areas the inversion rate drops significantly for most of the algorithms, because the inversion in forests is invalid for the applied scattering models at L-band. The validation against simultaneously acquired field measurements indicates an estimation accuracy (root mean square error) of 5-10vol.% for the soil moisture (range of in situ values: 1-46vol.%) and of 0.37-0.45cm for the soil roughness (range of in situ values: 0.5-4.0cm) within the catchment. Hence, a continuous monitoring of soil parameters with the obtained precision, excluding frozen and snow covered conditions, is possible. Especially future, fully polarimetric, space-borne, long wavelength SAR missions can profit distinctively from the developed polarimetric decomposition techniques for separation of ground and volume contributions as well as for soil parameter retrieval on large spatial scales. N2 - Zur Verbesserung der hydrologischen Abflussmodellierung, der Flutvorhersage, der gezielten Bewässerung von landwirtschaftlichen Nutzflächen und zum Schutz vor Ernteausfällen ist die Bestimmung der Bodenfeuchte und der Bodenrauhigkeit von grosser Bedeutung. Aufgrund der hohen zeitlichen sowie räumlichen Dynamik dieser Bodenparameter ist eine flächenhafte Erfassung mit hoher Auflösung und in kurzen zeitlichen Abständen notwendig. In situ Messtechniken stellen eine sehr zeit- und personalaufwändige Alternative dar, deshalb werden innovative Fernerkundungsverfahren mit aktivem Radar erprobt. Diese Aufnahmetechniken sind von Wetter- und Beleuchtungsverhältnissen unabhängig und besitzen zudem die Möglichkeit, abhängig von der Wellenlänge, in Medien einzudringen. Mit dem in dieser Arbeit verwendeten polarimetrischen Radar mit synthetischer Apertur (PolSAR) werden die Veränderungen der Polarisationen ausgewertet, da diese aufgrund der physikalischen Eigenschaften der reflektierenden Medien objektspezifisch verändert und gestreut werden. Es kann dadurch ein Bezug zwischen der empfangenen Radarwelle und den dielektrischen Eigenschaften (Feuchtegehalt) sowie der Oberflächengeometrie (Rauhigkeit) des Bodens hergestellt werden. Da vor allem in den gemässigten Klimazonen die landwirtschaftlichen Nutzflächen die meiste Zeit des Jahres mit Vegetation bestanden sind, wurden in dieser Dissertation Verfahren entwickelt, um die Bodenfeuchte und die Bodenrauhigkeit unter der Vegetation erfassen zu können. Um die einzelnen Rückstreubeiträge der Vegetation und des Bodens voneinander zu trennen, wurde die Eindringfähigkeit von längeren Wellenlängen (L-band, lambda=23cm) mit neu entwickelten (multi-angularen) polarimetrischen Dekompositionstechniken kombiniert, um die Komponente des Bodens zu extrahieren und auszuwerten. Für die Auswertung wurden polarimetrische Streumodelle benutzt, um die Bodenkomponente zu modellieren und dann mit der extrahierten Bodenkomponente der aufgenommenen Daten zu vergleichen. Die beste Übereinstimmung von Modell und Daten wurde als die gegebene Bodencharakteristik gewertet und dementsprechend invertiert. Die neu entwickelten, polarimetrischen Dekompositionstechniken für langwelliges polarimetrisches SAR basieren auf physikalischen Prinzipien, benötigen wenig Rechenzeit, erfordern keine Kalibrierung und sind ohne Verwendung von a priori Wissen analytisch lösbar. Um die entwickelten Algorithmen zu testen, wurden in drei verschiedenen Untersuchungsgebieten in Deutschland mit dem flugzeuggetragenen E-SAR Sensor des Deutschen Zentrums für Luft- und Raumfahrt (DLR) polarimetrische SAR Daten aufgenommen. Die Auswertungen der PolSAR Daten haben bestätigt, dass die besten Invertierungsergebnisse mit langen Wellenlängen erzielt werden können (L-Band). Des Weiteren konnten bei der Bestimmung der Bodenfeuchte und der Bodenrauhigkeit hohe Inversionsraten erreicht werden (bis zu 99% der Untersuchungsfläche). Es hat sich gezeigt, dass die polarimetrischen Streumodelle bei der gegebenen Wellenlänge nicht für bewaldete Gebiete geeignet sind, was die Anwendbarkeit des Verfahrens auf landwirtschaftliche Nutzflächen einschränkt. Die Validierung mit Bodenmessungen in den Untersuchungsgebieten, die zeitgleich zu den PolSAR Aufnahmen durchgeführt wurden, hat ergeben, dass eine kontinuierliche Beobachtung des Bodenzustandes (ausgenommen in Zeiten mit gefrorenem oder Schnee bedecktem Boden) mit einer Genauigkeit (Wurzel des mittleren quadratischen Fehlers) von 5-10vol.% für die Bodenfeuchte (in situ Messbereich: 1-46vol.%) und von 0.37-0.45cm für die Bodenrauhigkeit (in situ Messbereich: 0.5-4.0cm) möglich ist. Besonders künftige Fernerkundungsmissionen mit langwelligem, voll polarimetrischem SAR können von den entwickelten Dekompositionstechniken profitieren, um die Vegetationskomponente von der Bodenkomponente zu trennen und die Charakteristik des Oberbodens flächenhaft zu bestimmen. KW - SAR KW - Polarimetrie KW - Bodenfeuchte KW - polarimetrische Dekompositionen KW - Fernerkundung KW - SAR KW - Polarimetry KW - soil moisture KW - polarimetric decompositions KW - remote sensing Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-60519 ER - TY - JOUR A1 - Jagdhuber, Thomas A1 - Hajnsek, Irena A1 - Bronstert, Axel A1 - Papathanassiou, Konstantinos Panagiotis T1 - Soil moisture estimation under low vegetation cover using a multi-angular polarimetric decomposition JF - IEEE transactions on geoscience and remote sensing N2 - The estimation of volumetric soil moisture under low agricultural vegetation from fully polarimetric synthetic aperture radar (SAR) data at L-band using a multi-angular polarimetric decomposition is investigated. Radar polarimetry provides the framework to decompose the backscattered signal into different canonical scattering mechanisms referring to scattering contributions from the underlying soil and the vegetation cover. Multiangular observation diversity further increases the information space for soil moisture inversion enabling higher inversion rates and a stable inversion performance. The developed approach was applied on the multi-angular L-band data set acquired by German Aerospace Center's ESAR sensor as part of the OPAQUE campaign in 2008. The obtained results are compared against ground measurements collected by the OPAQUE team over a variety of vegetated agricultural fields. The validation of the estimated against ground measured soil moisture results in an root mean square error level of 6-8 vol.% including all test fields with a variety of crop types. KW - Multi-angular model-based decomposition KW - polarimetric SAR KW - soil moisture Y1 - 2013 U6 - https://doi.org/10.1109/TGRS.2012.2209433 SN - 0196-2892 VL - 51 IS - 4 SP - 2201 EP - 2215 PB - Inst. of Electr. and Electronics Engineers CY - Piscataway ER - TY - JOUR A1 - Kaiser, Thomas A1 - Wehrhan, Marc A1 - Werner, Armin A1 - Sommer, Michael T1 - Regionalizing ecological moisture levels and groundwater levels in grassland areas using thermal remote sensing JF - Grassland science N2 - Site-specific soil moisture and groundwater levels are key input parameters for ecological modeling. Obtaining such information in a comprehensive manner is difficult for large regions. We studied a floodplain region in the Federal State of Brandenburg, Germany, to examine the degree to which the average depth of groundwater tables can be derived from surface temperatures obtained by the ASTER radiospectrometer (spatial resolution of 90 m per pixel). A floristic ecological indicator representing the site-specific moisture level was applied to develop a proxy between the thermal satellite data and groundwater table depth. The use of spring scenes (late April to early May) from 2 years proved to be well suited for minimizing the effects of weather and land use. Vegetation surveys along transects that were 2 m wide across the pixel diagonals allowed for the calculation of average ecological moisture values of pixel-sites by applying Ellenberg-numbers. These values were used to calibrate the satellite data locally. There was a close relationship between surface temperature and the average ecological moisture value (R2 = 0.73). Average ecological moisture values were highly indicative of the average groundwater levels during a 7-year measurement series (R2 = 0.93). Satellite-supported thermal data from spring were suitable for estimating the average groundwater levels of low-lying grasslands on a larger scale. Ecological moisture values from the transect surveys effectively allowed the incorporation of relief heterogeneity within the thermal grid and the establishment of the correlation between thermal data and average groundwater table depth. Regression functions were used to produce a map of groundwater levels at the study site. KW - Ellenberg indicator values KW - groundwater table KW - satellite data KW - soil moisture Y1 - 2012 U6 - https://doi.org/10.1111/j.1744-697X.2011.00240.x SN - 1744-6961 VL - 58 IS - 1 SP - 42 EP - 52 PB - Wiley-Blackwell CY - Malden ER - TY - JOUR A1 - Lohmann, Dirk A1 - Tietjen, Britta A1 - Blaum, Niels A1 - Joubert, David F. A1 - Jeltsch, Florian T1 - Shifting thresholds and changing degradation patterns: climate change effects on the simulated long-term response of a semi-arid savanna to grazing JF - Journal of applied ecology : an official journal of the British Ecological Society N2 - 1. The complex, nonlinear response of dryland systems to grazing and climatic variations is a challenge to management of these lands. Predicted climatic changes will impact the desertification of drylands under domestic livestock production. Consequently, there is an urgent need to understand the response of drylands to grazing under climate change. 2. We enhanced and parameterized an ecohydrological savanna model to assess the impacts of a range of climate change scenarios on the response of a semi-arid African savanna to grazing. We focused on the effects of temperature and CO2 level increase in combination with changes in inter- and intra-annual precipitation patterns on the long-term dynamics of three major plant functional types. 3. We found that the capacity of the savanna to sustain livestock grazing was strongly influenced by climate change. Increased mean annual precipitation and changes in intra-annual precipitation pattern have the potential to slightly increase carrying capacities of the system. In contrast, decreased precipitation, higher interannual variation and temperature increase are leading to a severe decline of carrying capacities owing to losses of the perennial grass biomass. 4. Semi-arid rangelands will be at lower risk of shrub encroachment and encroachment will be less intense under future climatic conditions. This finding holds in spite of elevated levels of atmospheric CO2 and irrespective of changes in precipitation pattern, because of the drought sensitivity of germination and establishment of encroaching species. 5. Synthesis and applications. Changes in livestock carrying capacities, both positive and negative, mainly depend on the highly uncertain future rainfall conditions. However, independent of the specific changes, shrub encroachment becomes less likely and in many cases less severe. Thus, managers of semi-arid rangelands should shift their focus from woody vegetation towards perennial grass species as indicators for rangeland degradation. Furthermore, the resulting reduced competition from woody vegetation has the potential to facilitate ecosystem restoration measures such as re-introduction of desirable plant species that are only little promising or infeasible under current climatic conditions. On a global scale, the reductions in standing biomass resulting from altered degradation dynamics of semi-arid rangelands can have negative impacts on carbon sequestration. KW - CO2 increase KW - demographic bottleneck KW - ecohydrology KW - grid-based simulation model KW - livestock KW - precipitation pattern KW - savanna resilience KW - shrub encroachment KW - soil moisture KW - sustainable rangeland management Y1 - 2012 U6 - https://doi.org/10.1111/j.1365-2664.2012.02157.x SN - 0021-8901 VL - 49 IS - 4 SP - 814 EP - 823 PB - Wiley-Blackwell CY - Hoboken ER - TY - JOUR A1 - Meißl, Gertraud A1 - Formayer, Herbert A1 - Klebinder, Klaus A1 - Kerl, Florian A1 - Schöberl, Friedrich A1 - Geitner, Clemens A1 - Markart, Gerhard A1 - Leidinger, David A1 - Bronstert, Axel T1 - Climate change effects on hydrological system conditions influencing generation of storm runoff in small Alpine catchments JF - Hydrological processes : an international journal N2 - Floods and debris flows in small Alpine torrent catchments (<10km(2)) arise from a combination of critical antecedent system state conditions and mostly convective precipitation events with high precipitation intensities. Thus, climate change may influence the magnitude-frequency relationship of extreme events twofold: by a modification of the occurrence probabilities of critical hydrological system conditions and by a change of event precipitation characteristics. Three small Alpine catchments in different altitudes in Western Austria (Ruggbach, Brixenbach and Langentalbach catchment) were investigated by both field experiments and process-based simulation. Rainfall-runoff model (HQsim) runs driven by localized climate scenarios (CNRM-RM4.5/ARPEGE, MPI-REMO/ECHAM5 and ICTP-RegCM3/ECHAM5) were used in order to estimate future frequencies of stormflow triggering system state conditions. According to the differing altitudes of the study catchments, two effects of climate change on the hydrological systems can be observed. On one hand, the seasonal system state conditions of medium altitude catchments are most strongly affected by air temperature-controlled processes such as the development of the winter snow cover as well as evapotranspiration. On the other hand, the unglaciated high-altitude catchment is less sensitive to climate change-induced shifts regarding days with critical antecedent soil moisture and desiccated litter layer due to its elevation-related small proportion of sensitive areas. For the period 2071-2100, the number of days with critical antecedent soil moisture content will be significantly reduced to about 60% or even less in summer in all catchments. In contrast, the number of days with dried-out litter layers causing hydrophobic effects will increase by up to 8%-11% of the days in the two lower altitude catchments. The intensity analyses of heavy precipitation events indicate a clear increase in rain intensities of up to 10%. KW - climate change KW - hydrophobic effects KW - small Alpine catchments KW - soil moisture KW - storm runoff events KW - system conditions Y1 - 2016 U6 - https://doi.org/10.1002/hyp.11104 SN - 0885-6087 SN - 1099-1085 VL - 31 IS - 6 SP - 1314 EP - 1330 PB - Wiley CY - New York ER -