Exploring river–aquifer interactions and hydrological system response using baseflow separation, impulse response modeling, and time series analysis in three temperate lowland catchments
-
Published:2022-07-13
Issue:13
Volume:26
Page:3629-3649
-
ISSN:1607-7938
-
Container-title:Hydrology and Earth System Sciences
-
language:en
-
Short-container-title:Hydrol. Earth Syst. Sci.
Author:
Lu MinORCID, Rogiers Bart, Beerten Koen, Gedeon Matej, Huysmans Marijke
Abstract
Abstract. Lowland rivers and shallow aquifers are closely coupled, and their interactions are crucial for maintaining healthy stream ecological
functions. To explore river–aquifer interactions and the lowland hydrological system in three Belgian catchments, we apply a combined approach of baseflow separation, impulse response modeling, and time series analysis over a 30-year study period at the catchment scale. Baseflow from hydrograph separation shows that the three catchments are groundwater-dominated systems. The recursive digital filter methods generate a smoother baseflow time series than the graphical methods. Impulse response modeling is applied using a two-step procedure. The first step of groundwater level response modeling shows that groundwater level in shallow aquifers reacts fast to the system input, with most of the wells reaching their peak response during the first day. There is an overall trend of faster response time and higher response magnitude in the wet (October–March) than the dry (April–September) periods. The second step of groundwater inflow response modeling shows that the system response is also fast and that simulated groundwater inflow can capture some variations but not the peaks of the separated baseflow time series. The time series analysis indicates that groundwater discharge to rivers is likely following groundwater level time series characteristics, with a strong trend and seasonal strengths, in contrast to the streamflow, which exhibits a weak trend and seasonality. The impulse response modeling approach from the groundwater flow perspective can be an alternative method to estimate the groundwater inflow to rivers, as it considers the physical connection between river and aquifer to a certain extent. Further research is recommended to improve the simulation, such as giving more weight to wells close to the river and adding more drainage dynamics to the model input.
Funder
Fonds Wetenschappelijk Onderzoek
Publisher
Copernicus GmbH
Subject
General Earth and Planetary Sciences,General Engineering,General Environmental Science
Reference61 articles.
1. Alaghmand, S., Beecham, S., Woods, J. A., Holland, K. L., Jolly, I. D.,
Hassanli, A., and Nouri, H.: Quantifying the impacts of artificial flooding as a salt interception measure on a river-floodplain interaction in a semi-arid saline floodplain, Environ. Model. Softw., 79, 167–183,
https://doi.org/10.1016/j.envsoft.2016.02.006, 2016. 2. Anibas, C., Fleckenstein, J. H., Volze, N., Buis, K., Verhoeven, R., Meire,
P., and Batelaan, O.: Transient or steady-state? Using vertical temperature
profiles to quantify groundwater-surface water exchange, Hydrol. Process.,
23, 2165–2177, https://doi.org/10.1002/hyp.7289, 2009. 3. Anibas, C., Buis, K., Verhoeven, R., Meire, P., and Batelaan, O.: A simple
thermal mapping method for seasonal spatial patterns of groundwater–surface
water interaction, J. Hydrol., 397, 93–104, https://doi.org/10.1016/j.jhydrol.2010.11.036, 2011. 4. Anibas, C., Schneidewind, U., Vandersteen, G., Joris, I., Seuntjens, P., and
Batelaan, O.: From streambed temperature measurements to spatial-temporal
flux quantification: Using the LPML method to study groundwater-surface
water interaction, Hydrol. Process., 30, 203–216, https://doi.org/10.1002/hyp.10588, 2015. 5. Anibas, C., Tolche, A. D., Ghysels, G., Nossent, J., Schneidewind, U., Huysmans, M., and Batelaan, O.: Delineation of spatial-temporal patterns of
groundwater/surface-water interaction along a river reach (Aa river,
belgium) with transient thermal modeling, Hydrogeol. J., 26, 819–835,
https://doi.org/10.1007/s10040-017-1695-9, 2017.
Cited by
7 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|