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Differential C-Q Analysis: A New Approach to Inferring Lateral Transport and Hydrologic Transients Within Multiple Reaches of a Mountainous Headwater Catchment

Authors: Arora, B.ORCID; Burrus, M.; Newcomer, M.ORCID; Steefel, C. I.ORCID; Carroll, R. W. H.; Dwivedi, D.; Dong, W.ORCID; Williams, K. H.ORCID; Hubbard, S. S.ORCID
Year: 2020
Journal: Frontiers in Water, Vol. 2, pp. doi: 10.3389
DOI: 10.3389/frwa.2020.00024

Abstract

Concentration-discharge (C-Q) relationships have been widely used as “hydrochemical tracers” to determine the variability in riverine solute exports across event, seasonal, annual, and decadal time scales. However, these C-Q relationships are limited to investigating solute transport dynamics at individual sampling stations, such that they create an incomplete understanding of the solute behavior upstream or downstream of the sampling station. Therefore, the objective of this study is to develop, apply and assess a differential C-Q approach that can characterize spatial variability in solute behavior across stations, as well as investigate their controls, by following a different spatial scheme and organizing the river into multiple sections. The differential C-Q approach captures the difference in concentration in a river segment over the difference in discharge, thereby accounting for gains, losses or fractional solute turnover between sampling stations. Using water quality data collected over four water years (2014-18) in a mountainous headwater catchment of the East River, Colorado, this study compares traditional and differential C-Q relationships in predicting solute behavior between three sampling stations distributed throughout the river. Results from the differential C-Q analysis demonstrate significant differences in solute behavior within upstream versus downstream reaches of the East River watershed. In particular, the meandering downstream section is marked by significant gains in both groundwater and solute concentrations as opposed to the dilution and the declining trends observed in the high-relief, steep terrain upstream reach. Shale mineralogy was determined to have a major influence on in-stream concentrations pertaining to Ca, DIC, DOC, Mg, Mo, NO3 and SO4. The analyses further revealed that total P concentration in the downstream reach exceeded the U.S. Environmental Protection Agency’s desired goal for control of eutrophication (110 ppb). Overall, differential C-Q metrics yield a better understanding of the lateral storage and interactions within catchments than traditional analyses, and holds potential for aiding water quality managers in the identification of critical stream reaches that assimilate harmful chemicals.

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References (66)

10 in Knowledge Hub, 56 external

Publication

Predicting sedimentary bedrock subsurface weathering fronts and weathering rates

2019Sci. RepDOI: 10.1038/s41598-019-53205-2
Publication

Depth- and time-resolved distributions of snowmelt-driven hillslope subsurface flow and transport and their contributions to surface waters.

2019Water Resour. ResDOI: 10.1029/2019WR025093
Publication

The importance of interflow to groundwater recharge in a snowmelt-dominated headwater basin

2019Geophys. Res. LettDOI: 10.1029/2019GL082447
Publication

Factors Controlling Seasonal Groundwater and Solute Flux from Snow-Dominated Basins

2018Hydrol. Process.DOI: 10.1002/hyp.13151
Publication

The East River, Colorado, Watershed: A mountainous community testbed for improving predictive understanding of multiscale hydrological-biogeochemical dynamics

2018Vadose Zo. JDOI: 10.2136/vzj2018.03.0061
Publication

Snowmelt controls on concentration-discharge relationships and the balance of oxidative and acid-base weathering fluxes in an alpine catchment, East River, Colorado

2017Water Resour. ResDOI: 10.1002/2016WR019724
Publication

Impact of intra-meander hyporheic flow on nitrogen cycling

2017Procedia Earth Planet. SciDOI: 10.1016/j.proeps.2016.12.102
Publication

Contrasting the hydrologic response due to land cover and climate change in a mountain headwaters system

2016EcohydrologyDOI: 10.1002/eco.1779
Publication

Using geochemical indicators to distinguish high biogeochemical activitiy in floodplain soils and sediments

2016Sci. Total EnvironDOI: 10.1016/j.scitotenv.2016.04.014
Publication

Geochemical exports to river from the intra-meander hyporheic zone under transient hydrologic conditions: East River Mountainous Watershed, Colorado

Water Resour. ResDOI: 10.1029/2018WR023377