Soil–Water Dynamics Investigation at Agricultural Hillslope with High-Precision Weighing Lysimeters and Soil–Water Collection Systems

Author:

Krevh Vedran1ORCID,Groh Jannis234ORCID,Filipović Lana1ORCID,Gerke Horst H.4ORCID,Defterdarović Jasmina1ORCID,Thompson Sally5,Sraka Mario6,Bogunović Igor7ORCID,Kovač Zoran8ORCID,Robinson Nathan9ORCID,Baumgartl Thomas10ORCID,Filipović Vilim110ORCID

Affiliation:

1. Department of Soil Amelioration, Faculty of Agriculture, University of Zagreb, 10000 Zagreb, Croatia

2. Institute of Crop Science and Resource Conservation—Soil Science and Soil Ecology, University of Bonn, 53113 Bonn, Germany

3. Forschungszentrum Jülich GmbH, Institute of Bio- and Geoscience (IBG-3, Agrosphere), 52428 Jülich, Germany

4. Leibniz Centre for Agricultural Landscape Research (ZALF), Research Area 1 “Landscape Functioning”, 5374 Müncheberg, Germany

5. School of Engineering, Civil, Environmental and Mining Engineering, University of Western Australia, Perth, WA 6009, Australia

6. Department of Soil Science, Faculty of Agriculture, University of Zagreb, 10000 Zagreb, Croatia

7. Department of General Agronomy, Faculty of Agriculture, University of Zagreb, 10000 Zagreb, Croatia

8. Department of Geology and Geological Engineering, Faculty of Mining Geology and Petroleum Engineering, University of Zagreb, 10000 Zagreb, Croatia

9. Centre for eResearch and Digital Innovation, Federation University, Mount Helen, VIC 3350, Australia

10. Future Regions Research Centre, Geotechnical and Hydrogeological Engineering Research Group, Federation University, Gippsland, VIC 3841, Australia

Abstract

A quantitative understanding of actual evapotranspiration (ETa) and soil–water dynamics in a hillslope agroecosystem is vital for sustainable water resource management and soil conservation; however, the complexity of processes and conditions involving lateral subsurface flow (LSF) can be a limiting factor in the full comprehension of hillslope soil–water dynamics. The research was carried out at SUPREHILL CZO located on a hillslope agroecosystem (vineyard) over a period of two years (2021–2022) by combining soil characterization and field hydrological measurements, including weighing lysimeters, sensor measurements, and LSF collection system measurements. Lysimeters were placed on the hilltop and the footslope, both having a dynamic controlled bottom boundary, which corresponded to field pressure head measurements, to mimic field soil–water dynamics. Water balance components between the two positions on the slope were compared with the goal of identifying differences that might reveal hydrologically driven differences due to LSF paths across the hillslope. The usually considered limitations of these lysimeters, or the borders preventing LSF through the domain, acted as an aid within this installation setup, as the lack of LSF was compensated for through the pumping system at the footslope. The findings from lysimeters were compared with LSF collection system measurements. Weighing lysimeter data indicated that LSF controlled ETa rates. The results suggest that the onset of LSF contributes to the spatial crop productivity distribution in hillslopes. The present approach may be useful for investigating the impact of LSF on water balance components for similar hillslope sites and crops or other soil surface covers.

Funder

Croatian Science Foundation

Publisher

MDPI AG

Subject

Water Science and Technology,Aquatic Science,Geography, Planning and Development,Biochemistry

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