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Understanding links between water-quality variables and nitrate concentration in freshwater streams using high frequency sensor data

journal contribution
posted on 2024-11-03, 10:07 authored by Claire Kermorvant, Benoit Liquet, Guy Litt, Kerrie Mengersen, Erin Peterson, Rob Hyndman, Jeremy Jones, Catherine LeighCatherine Leigh
Real-time monitoring using in-situ sensors is becoming a common approach for measuring water-quality within watersheds. High-frequency measurements produce big datasets that present opportunities to conduct new analyses for improved understanding of water-quality dynamics and more effective management of rivers and streams. Of primary importance is enhancing knowledge of the relationships between nitrate, one of the most reactive forms of inorganic nitrogen in the aquatic environment, and other water-quality variables. We analysed high-frequency water-quality data from in-situ sensors deployed in three sites from different watersheds and climate zones within the National Ecological Observatory Network, USA. We used generalised additive mixed models to explain the nonlinear relationships at each site between nitrate concentration and conductivity, turbidity, dissolved oxygen, water temperature, and elevation. Temporal auto-correlation was modelled with an auto-regressive- moving-average (ARIMA) model and we examined the relative importance of the explanatory variables. Total deviance explained by the models was high for all sites (99%). Although variable importance and the smooth regression parameters differed among sites, the models explaining the most variation in nitrate contained the same explanatory variables. This study demonstrates that building a model for nitrate using the same set of explanatory water-quality variables is achievable, even for sites with vastly different environmental and climatic characteristics. Applying such models will assist managers to select cost-effective water-quality variables to monitor when the goals are to gain a spatial and temporal in-depth understanding of nitrate dynamics and adapt management plans accordingly.

Funding

Revolutionising water-quality monitoring in the information age

Australian Research Council

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  1. 1.
    DOI - Is published in 10.1371/journal.pone.0287640
  2. 2.
    ISSN - Is published in 19326203

Journal

PLoS ONE

Volume

18

Number

e0287640

Issue

6

Start page

1

End page

16

Total pages

16

Publisher

Public Library of Science

Place published

United States

Language

English

Copyright

Copyright: © 2023 Kermorvant et al. This is an open access article distributed under the terms of the Creative Commons Attribution 4.0 International (CC BY 4.0) License

Former Identifier

2006124189

Esploro creation date

2023-08-26

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