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Beyond the bucket: development of a global gradient-based groundwater modeling software – its evaluation and integration into a global hydrological model

  • Groundwater is the largest source of accessible freshwater with its dynamics having significantly changed due to human withdrawals, and being projected to continue to as a result of climate change. The pumping of groundwater has led to lowered water tables, decreased base flow, and depletion. Global hydrological models (GHMs) are used to simulate the global freshwater cycle, assessing impacts of changes in climate and human freshwater use. Currently, groundwater is commonly represented by a bucket-like linear storage component in these models. Bucket models, however, cannot provide information on the location of the groundwater table. Due to this limitation, they can only simulate groundwater discharge to surface water bodies but not recharge from surface water to groundwater and calculate no lateral and vertical groundwater flow whatsoever among grid cells. For instance this may lead to an underestimation of groundwater resources in semiarid areas, where groundwater is often replenished by surface water. In order to overcome these limitations it is necessary to replace the linear groundwater model in GHMs with a hydraulic head gradient-based groundwater flow model This thesis presents the newly developed global groundwater model G3M and its coupling to the GHM WaterGAP spanning over 70,000 lines of newly developed code. Development and validation of the modeling software are discussed along with numerical challenges. Based on the newly developed software, a global natural equilibrium groundwater model is presented showing better agreements with observations than previous models. Groundwater discharge to rivers is found to be the most dominant flow component globally, compared to flows to other surface water bodies and lateral flows. Furthermore, first global maps of the distribution of gaining and losing surface water bodies are displayed. For the purpose of determining the uncertainty in model outcomes a sensitivity study is conducted with an innovative approach through applying a global sensitivity analysis for a computationally complex model. First global maps of spatially distributed parameter sensitivities are presented. The results at hand indicate that globally simulated hydraulic heads are equally sensitive to hydraulic conductivity, groundwater recharge and surface water body elevation, even though parameter sensitivities do vary regionally. A high resolution model of New Zealand is developed to further understand the involved uncertainties connected to the spatial resolution of the global model. This thesis finds that a new understanding is necessary how these models can be evaluated and that a simple increase in spatial resolution is not improving the model performance when compared to observations. Alongside the assessment of the natural equilibrium, the concept of a fully coupled transient model as integrated storage component replacing the former model in the hydrological model WaterGAP is discussed. First results reveal that the model shows reasonable response to seasonal variability although it contains persistent head trends leading to global overestimates of water table depth due to an incomplete coupling. Nonetheless, WaterGAP-G3M is already able to show plausible long term storage trends for areas that are known to be affected by groundwater depletion. In comparison with two established regional models in the Central Valley the coupled model shows a highly promising simulation of storage declines.

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Metadaten
Verfasserangaben:Robert ReineckeORCiDGND
URN:urn:nbn:de:hebis:30:3-531419
Titel des übergeordneten Werkes (Deutsch):Frankfurt Hydrology Paper ; 19
übersetzter Titel (Deutsch):Von linearen Speichermodellen zu gradientenbasierter Grundwassermodellierung: Die Entwicklung eines globalen Grundwassermodells und seine Integration in ein globales hydrologisches Modell
Schriftenreihe (Bandnummer):Frankfurt Hydrology Paper (19)
Verlag:Institute of Physical Geography, Goethe University
Verlagsort:Frankfurt am Main
Gutachter*in:Petra DöllORCiDGND, Laura Foglia, Thorsten Wagener
Betreuer:Petra Döll, Laura Foglia
Dokumentart:Dissertation
Sprache:Englisch
Jahr der Fertigstellung:2020
Jahr der Erstveröffentlichung:2020
Veröffentlichende Institution:Universitätsbibliothek Johann Christian Senckenberg
Titel verleihende Institution:Johann Wolfgang Goethe-Universität
Datum der Abschlussprüfung:20.12.2019
Datum der Freischaltung:05.03.2020
Freies Schlagwort / Tag:global; groundwater; hydrology
Seitenzahl:242
HeBIS-PPN:460964909
Institute:Geowissenschaften / Geographie / Geowissenschaften
DDC-Klassifikation:5 Naturwissenschaften und Mathematik / 55 Geowissenschaften, Geologie / 550 Geowissenschaften
Sammlungen:Universitätspublikationen
Lizenz (Deutsch):License LogoDeutsches Urheberrecht