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Relating estuarine turbidity maxima to tide and river conditions
Grasso, F.; Bismuth, E.; Burchard, H.; Defontaine, S.; Kosters, F.; LAFITE, R.; Reese, L.; Sottolichio, A.; van Kessel, T.; Vanlede, J.; Van Maren, D.S.; Walther, R.; Zorndt, A. (2025). Relating estuarine turbidity maxima to tide and river conditions. NPG Scientific Reports 16(1): 3096. https://dx.doi.org/10.1038/s41598-025-32950-7
In: Scientific Reports (Nature Publishing Group). Nature Publishing Group: London. ISSN 2045-2322; e-ISSN 2045-2322, more
Peer reviewed article  

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Author keywords
    suspended-sediment transport;macrotidal seine estuary;ems river;human impact;long-term;france;dynamics;frequency;hydrodynamics;variability

Authors  Top 
  • Grasso, F.
  • Bismuth, E.
  • Burchard, H.
  • Defontaine, S.
  • Kosters, F.
  • LAFITE, R.
  • Reese, L.
  • Sottolichio, A.
  • van Kessel, T.
  • Vanlede, J., more
  • Van Maren, D.S.
  • Walther, R.
  • Zorndt, A.

Abstract
    Tidal rivers and estuaries may experience high levels of suspended particulate matter (SPM), which impacts water quality and ecosystem functioning. The processes controlling the development of estuarine turbidity maxima (ETM) are fairly well understood. However, predicting the maximum SPM concentration in an estuary based on aggregated parameters (estuarine dimensions, river discharge, tidal range) remains, up to now, impossible without extensive in-situ measurements and/or numerical models. This study introduces an approach that links the strength of the ETM to the tidal, river, and morphological characteristics of a system. Using in-situ data from contrasting meso- to macro-tidal estuaries, we found a consistent pattern of maximum SPM concentrations within a two-dimensional parameter space. The resulting turbidity diagram reveals a high SPM hotspot in estuaries with specific forcing conditions, corresponding to intermediate relative tidal amplitudes and freshwater Froude numbers. This multi-site research advances our predictions of ETM intensity in tide-dominated estuaries, offering a straightforward method to explore potential turbidity trajectories under various human pressures.

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