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DOI10.1029/2021WR029692
A framework for assessing concentration-discharge catchment behaviour from low-frequency water quality data
Ina Pohle; Nikki Baggaley; Javier Palarea-Albaladejo; Marc Stutter; Miriam Glendell
2021-08-16
发表期刊Water Resources Research
出版年2021
英文摘要

Effective nutrient pollution mitigation measures require in-depth understanding of spatio-temporal controls on water quality which can be obtained by analyzing export regime and hysteresis patterns in concentration-discharge (urn:x-wiley:00431397:media:wrcr25509:wrcr25509-math-0001) relationships. Such analyses require high-frequency data (hourly or higher resolution), hampering the assessment of hysteresis patterns in widely available low-frequency (monthly, biweekly) regulatory water quality data. We propose a reproducible classification of urn:x-wiley:00431397:media:wrcr25509:wrcr25509-math-0002 relationships considering export regime (dilution, constancy, enrichment) and long-term average hysteresis pattern (clockwise, no hysteresis, anticlockwise) applicable to low-frequency water quality data. The classification is based on power-law urn:x-wiley:00431397:media:wrcr25509:wrcr25509-math-0003 models with separate parametrization for low and high discharge and rising and falling hydrograph limb, enabling a better representation of urn:x-wiley:00431397:media:wrcr25509:wrcr25509-math-0004 dynamics. The classification has been applied to a 30-year record of daily streamflow and monthly spot samples of solute concentrations in 45 Scottish catchments with contrasting characteristics in terms of topography, climate, soil and land cover.

We found that urn:x-wiley:00431397:media:wrcr25509:wrcr25509-math-0005 classification is solute- and catchment- specific and linked to upland versus lowland catchments and streamflow variability. However as the relationship between solute behaviour and catchment characteristics is variable, we propose that future typologies should integrate both water quality response, i.e. urn:x-wiley:00431397:media:wrcr25509:wrcr25509-math-0006 classification, and catchment characteristics.

The data-driven urn:x-wiley:00431397:media:wrcr25509:wrcr25509-math-0007 classification allows us to increase the information content of low-frequency water quality data and thus inform mitigation measures, monitoring strategies, and modelling approaches. Such approaches open up an ability to characterize processes and best management for a wider number of catchments, subject to regulatory surveillance and outside of research catchments.

This article is protected by copyright. All rights reserved.

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文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/335973
专题资源环境科学
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Ina Pohle,Nikki Baggaley,Javier Palarea-Albaladejo,et al. A framework for assessing concentration-discharge catchment behaviour from low-frequency water quality data[J]. Water Resources Research,2021.
APA Ina Pohle,Nikki Baggaley,Javier Palarea-Albaladejo,Marc Stutter,&Miriam Glendell.(2021).A framework for assessing concentration-discharge catchment behaviour from low-frequency water quality data.Water Resources Research.
MLA Ina Pohle,et al."A framework for assessing concentration-discharge catchment behaviour from low-frequency water quality data".Water Resources Research (2021).
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