The search result changed since you submitted your search request. Documents might be displayed in a different sort order.
  • search hit 1 of 13
Back to Result List

Landscape-scale water balance monitoring with an iGrav superconducting gravimeter in a field enclosure

  • In spite of the fundamental role of the landscape water balance for the Earth's water and energy cycles, monitoring the water balance and its components beyond the point scale is notoriously difficult due to the multitude of flow and storage processes and their spatial heterogeneity. Here, we present the first field deployment of an iGrav superconducting gravimeter (SG) in a minimized enclosure for long-term integrative monitoring of water storage changes. Results of the field SG on a grassland site under wet-temperate climate conditions were compared to data provided by a nearby SG located in the controlled environment of an observatory building. The field system proves to provide gravity time series that are similarly precise as those of the observatory SG. At the same time, the field SG is more sensitive to hydrological variations than the observatory SG. We demonstrate that the gravity variations observed by the field setup are almost independent of the depth below the terrain surface where water storage changes occur (contrary toIn spite of the fundamental role of the landscape water balance for the Earth's water and energy cycles, monitoring the water balance and its components beyond the point scale is notoriously difficult due to the multitude of flow and storage processes and their spatial heterogeneity. Here, we present the first field deployment of an iGrav superconducting gravimeter (SG) in a minimized enclosure for long-term integrative monitoring of water storage changes. Results of the field SG on a grassland site under wet-temperate climate conditions were compared to data provided by a nearby SG located in the controlled environment of an observatory building. The field system proves to provide gravity time series that are similarly precise as those of the observatory SG. At the same time, the field SG is more sensitive to hydrological variations than the observatory SG. We demonstrate that the gravity variations observed by the field setup are almost independent of the depth below the terrain surface where water storage changes occur (contrary to SGs in buildings), and thus the field SG system directly observes the total water storage change, i.e., the water balance, in its surroundings in an integrative way. We provide a framework to single out the water balance components actual evapotranspiration and lateral subsurface discharge from the gravity time series on annual to daily timescales. With about 99 and 85% of the gravity signal due to local water storage changes originating within a radius of 4000 and 200m around the instrument, respectively, this setup paves the road towards gravimetry as a continuous hydrological field-monitoring technique at the landscape scale.show moreshow less

Download full text files

  • pmnr663.pdfeng
    (8125KB)

    SHA-1: b16b29e02049248aadb51419886c1dbafb2161aa

Export metadata

Additional Services

Search Google Scholar Statistics
Metadaten
Author details:Andreas GüntnerORCiDGND, Marvin ReichORCiD, Michal MikolajORCiD, Benjamin Creutzfeldt, Stephan Schroeder, Hartmut Wziontek
URN:urn:nbn:de:kobv:517-opus4-419105
DOI:https://doi.org/10.25932/publishup-41910
ISSN:1866-8372
Title of parent work (English):Postprints der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe
Publication series (Volume number):Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe (663)
Publication type:Postprint
Language:English
Date of first publication:2019/03/04
Publication year:2017
Publishing institution:Universität Potsdam
Release date:2019/03/04
Tag:athmosphere; attraction; gravity measurements; local hydrology; noise-levels; storage changes; surface; system; time
Issue:663
Number of pages:16
Source:Hydrology and Earth System Sciences 21 (2017), pp. 3167–3182 DOI 10.5194/hess-21-3167-2017
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät
DDC classification:5 Naturwissenschaften und Mathematik / 55 Geowissenschaften, Geologie / 550 Geowissenschaften
Peer review:Referiert
Publishing method:Open Access
Grantor:Copernicus
License (German):License LogoCC-BY - Namensnennung 4.0 International
Accept ✔
This website uses technically necessary session cookies. By continuing to use the website, you agree to this. You can find our privacy policy here.