Temporal dynamics of tree xylem water isotopes: in situ monitoring and modeling
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Published:2021-08-12
Issue:15
Volume:18
Page:4603-4627
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ISSN:1726-4189
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Container-title:Biogeosciences
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language:en
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Short-container-title:Biogeosciences
Author:
Seeger StefanORCID, Weiler MarkusORCID
Abstract
Abstract. We developed a setup for a fully automated, high-frequency in situ monitoring
system of the stable water isotope deuterium and 18O in soil water and
tree xylem. The setup was tested for 12 weeks within an isotopic labeling
experiment during a large artificial sprinkling experiment including three
mature European beech (Fagus sylvatica) trees. Our setup allowed for
one measurement every 12–20 min, enabling us to obtain about seven
measurements per day for each of our 15 in situ probes in the soil and tree
xylem. While the labeling induced an abrupt step pulse in the soil water
isotopic signature, it took 7 to 10 d until the isotopic signatures at
the trees' stem bases reached their peak label concentrations and it took
about 14 d until the isotopic signatures at 8 m stem height
leveled off around the same values. During the experiment, we observed the
effects of several rain events and dry periods on the xylem water isotopic
signatures, which fluctuated between the measured isotopic signatures observed
in the upper and lower soil horizons. In order to explain our observations,
we combined an already existing root water uptake (RWU) model with a newly
developed approach to simulate the propagation of isotopic signatures from the
root tips to the stem base and further up along the stem. The key to a proper
simulation of the observed short-term dynamics of xylem water isotopes was
accounting for sap flow velocities and the flow path length distribution
within the root and stem xylem. Our modeling framework allowed us to identify
parameter values that relate to root depth, horizontal root distribution and
wilting point. The insights gained from this study can help to improve the
representation of stable water isotopes in trees within ecohydrological models
and the prediction of transit time distribution and water age of transpiration
fluxes.
Funder
Deutsche Forschungsgemeinschaft
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Ecology, Evolution, Behavior and Systematics
Reference66 articles.
1. Badamasi, Y. A.: The working principle of an Arduino, in: 2014 11th
International Conference on Electronics, Computer and Computation (ICECCO),
IEEE, 1–4, 29 September–1 October 2014, Abuja, Nigeria, https://doi.org/10.1109/ICECCO.2014.6997578, 2014. a 2. Bernacchi, C. J. and VanLoocke, A.: Terrestrial Ecosystems in a Changing Environment: A Dominant Role for Water, Annu. Revi. Plant Biol., 66, 599–622, https://doi.org/10.1146/annurev-arplant-043014-114834, 2015. a 3. Beyer, M., Kühnhammer, K., and Dubbert, M.: In situ measurements of soil and plant water isotopes: a review of approaches, practical considerations and a vision for the future, Hydrol. Earth Syst. Sci., 24, 4413–4440, https://doi.org/10.5194/hess-24-4413-2020, 2020. a, b, c 4. Brinkmann, N., Seeger, S., Weiler, M., Buchmann, N., Eugster, W., and Kahmen, A.: Employing stable isotopes to determine the residence times of soil water and the temporal origin of water taken up by Fagus sylvatica and Picea abies in a temperate forest, New Phytol., 219, 1300–1313, https://doi.org/10.1111/nph.15255, 2018. a, b, c 5. Busch, D. E., Ingraham, N. L., and Smith, S. D.: Water Uptake in Woody Riparian Phreatophytes of the Southwestern United States: A Stable Isotope Study, Ecol. Appl., 2, 450–459, https://doi.org/10.2307/1941880, 1992. a
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