Landscape heterogeneity drives contrasting concentration–discharge relationships in shale headwater catchments
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Published:2015-08-03
Issue:8
Volume:19
Page:3333-3347
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ISSN:1607-7938
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Container-title:Hydrology and Earth System Sciences
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language:en
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Short-container-title:Hydrol. Earth Syst. Sci.
Author:
Herndon E. M., Dere A. L., Sullivan P. L., Norris D., Reynolds B., Brantley S. L.ORCID
Abstract
Abstract. Solute concentrations in stream water vary with discharge in patterns that record complex feedbacks between hydrologic and biogeochemical processes. In a comparison of three shale-underlain headwater catchments located in Pennsylvania, USA (the forested Shale Hills Critical Zone Observatory), and Wales, UK (the peatland-dominated Upper Hafren and forest-dominated Upper Hore catchments in the Plynlimon forest), dissimilar concentration–discharge (C–Q) behaviors are best explained by contrasting landscape distributions of soil solution chemistry – especially dissolved organic carbon (DOC) – that have been established by patterns of vegetation and soil organic matter (SOM). Specifically, elements that are concentrated in organic-rich soils due to biotic cycling (Mn, Ca, K) or that form strong complexes with DOC (Fe, Al) are spatially heterogeneous in pore waters because organic matter is heterogeneously distributed across the catchments. These solutes exhibit non-chemostatic behavior in the streams, and solute concentrations either decrease (Shale Hills) or increase (Plynlimon) with increasing discharge. In contrast, solutes that are concentrated in soil minerals and form only weak complexes with DOC (Na, Mg, Si) are spatially homogeneous in pore waters across each catchment. These solutes are chemostatic in that their stream concentrations vary little with stream discharge, likely because these solutes are released quickly from exchange sites in the soils during rainfall events. Furthermore, concentration–discharge relationships of non-chemostatic solutes changed following tree harvest in the Upper Hore catchment in Plynlimon, while no changes were observed for chemostatic solutes, underscoring the role of vegetation in regulating the concentrations of certain elements in the stream. These results indicate that differences in the hydrologic connectivity of organic-rich soils to the stream drive differences in concentration behavior between catchments. As such, in catchments where SOM is dominantly in lowlands (e.g., Shale Hills), we infer that non-chemostatic elements associated with organic matter are released to the stream early during rainfall events, whereas in catchments where SOM is dominantly in uplands (e.g., Plynlimon), these non-chemostatic elements are released later during rainfall events. The distribution of SOM across the landscape is thus a key component for predictive models of solute transport in headwater catchments.
Funder
Division of Earth Sciences Natural Environment Research Council
Publisher
Copernicus GmbH
Subject
General Earth and Planetary Sciences,General Engineering,General Environmental Science
Reference78 articles.
1. Andrews, D. M., Lin, H., Zhu, Q., Jin, L., and Brantley, S. L.: Hot spots and hot moments of dissolved organic carbon export and soil organic carbon storage in the Shale Hills catchment, Vadose Zone J., 10, 943–954, 2011. 2. Band, L. E., Peterson, D. L., Running, S. W., Coughlan, J., Lammers, R., Dungan, J., and Nemani, R.: Forest ecosystem processes at the watershed scale: basis for distributed simulation, Ecol. Model., 56, 171–196, https://doi.org/10.1016/0304-3800(91)90199-B, 1991. 3. Bandstra, J. Z., Buss, H. L., Campen, R. K., Liermann, L. J., Moore, J., Hausrath, E. M., Navarre-Sitchler, A. K., Jang, J., and Brantley, S. L.: Appendix: compilation of mineral dissolution rates, in: Kinetics of Water-Rock Interaction, edited by: Brantley, S.,Kubicki, J., and White, A., Springer, New York, 737–823, 2008. 4. Beven, K. J. and Kirkby, M. J.: A physically based variable contributing area model of basin hydrology, Hydrologic Science Bulletin, 24, 43–69, 1979. 5. Bishop, K., Siebert, J., Kohler, S., and Laudon, H.: Resolving the double paradox of rapidly mobilized old water with highly variable reponses in runoff chemistry, Hydrol. Process., 18, 185–189, 2004.
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