Abstract

Diffuse nitrate (NO3) contamination from intense agriculture adversely impacts freshwater ecosystems, and can also result in nitrate concentrations exceeding limits set in drinking water regulation, when receiving surface waters are used for drinking water production. Implementation of near-natural mitigation zones such as reactive swales or wetlands have been proven to be promising measures to reduce nitrate loads in agricultural drainage waters. However, the behavior of these systems at low temperatures and its dependence on systemdesign has not beenwell known until now. In this study, the behavior of a full-scale (length: 45 m) reactive swale treating drainage water from an agricultural watershed in Brittany (France), with high nitrate concentrations in the receiving river, was monitored for one season (6 months). As flow in this full-size field system is usually restricted to winter and spring months (December–May), it usually operates at lowwater temperatures of 5–10 WC. Tracer tests revealed shorter than designed retention times due to high inflows and preferential flow in the swale. Results show a correlation between residence time and nitrate reduction with low removal (<10%) for short residence times (<0.1 day), increasing to >25% at residence times >10 h (0.4 day). Performance was compared to results of two technical-scale reactive swales (length: 8 m) operated for 1.5 yearswith two different residence times (0.4 and 2.5 days), situated at a test site of the German Federal Environmental Agency in Berlin (Germany). Similar nitrate reduction was observed for comparable temperature and residence time, showing that up-scaling is a suitable approach to transferring knowledge gathered from technical-scale experiments to field conditions. For the design of new mitigation systems, one recommendation is to investigate carefully the expected inflow volumes in advance to ensure a sufficient residence time for effective nitrate reduction at low temperatures.

Wicke, D. , Rouault, P. , Krause Camilo, B. , Pagotto, C. , Dechesne, M. , Soyeux, E. (2014): Nitrate reduction in reactive swales at low temperatures: full-size field system vs. technical scale.

p 9 In: IWA 14th International Conference on Wetland Systems for Water Pollution Control (ICWS). Shanghai, China. 13-17 October 2014

Abstract

Diffuse nitrate (NO3) contamination from intense agriculture adversely impacts freshwater ecosystems, and can also result in nitrate concentrations exceeding limits set in drinking water regulation, when receiving surface waters are used for drinking water production. Implementation of near-natural mitigation zones such as reactive swales or wetlands have been proven to be promising measures to reduce nitrate loads in agricultural drainage waters. However, the behavior of these systems at low temperatures and its dependence on system design is not well known until now. In this study, the behavior of a full scale (length: 45 m) reactive swale treating drainage water of an agricultural watershed in Brittany (France) with high nitrate concentrations in the receiving river, was monitored for one season (6 months). As flow in this field scale system is usually restricted to winter and spring months (December – May), it usually operates at low water temperatures of 5°C - 10°C. Tracer tests revealed shorter than designed retention times due to high inflows and preferential flow in the swale. Results show a correlation between residence time and nitrate reduction with low removal (<10%) at short residence times (<0.1 d), increasing to >25% at residence times >10h (0.4 d). Performance was compared to results of two technical scale reactive swales (length: 8 m) operated for 1.5 years at two different residence times (0.4 and 2.5 days), situated at a test site of the German Federal Environmental Agency (UBA) in Berlin (Germany). Similar nitrate reduction was observed for comparable temperature and residence time, showing that up-scaling is a suitable approach to transfer knowledge gathered from technical scale experiments to field conditions. For the design of new mitigation systems, one recommendation is to investigate carefully expected inflow volumes in advance to ensure a sufficient residence time for effective nitrate reduction at low temperatures.

Grützmacher, G. , Dechesne, M. , Pitois, F. , Pagotto, C. , Fastner, J. (2009): Occurrence of cylindrospermopsin, anatoxin-a and saxitoxins in France and implications for drinking water prodution.

p 1 In: 14th international conference on toxicity assessment. Metz, France. 30.08.-04.09.2009

Abstract

In summer 2007 & 2008, 100 water samples were collected from 10 freshwater reservoirs with cyanobacteria issues. Phytoplankton was determined according to the Utermohl method [1]. Intra- and extracellular CYN, ATX-a, STX were analyzed by LC-MS-MS or HPLC-PDA at UBA, and in addition, Veolia tested Abraxis ELISA kits for total CYN and total STX on the 2008 water samples (n=45). Cyanobacterial abundance was comparably low in 2007 & 2008 for all reservoirs, probably because of cooler summer months, with less sunlight, more rain and quickly decreasing fall temperatures (except in reservoir 10, which had low incoming nutrient charges). For instance, average chlorophyll content was 12 µg/L in 2007 and 35 µg/L in 2008 in Western France, when 60-80 µg/L concentrations are usually measured. In spite of these environmental conditions, cyanobacteria were detected in 97% of the samples and cyanotoxins in 55%. WHO level 3 for drinking water (>100 000 cell/mL) was reached for 20-25% of the samples. Among the species observed in the water samples, the following potential CYN, ATX-a, STX producers were observed: Cyanotoxin LC-MS-MS and HPLC-PDA results are given on the right. ELISA results for CYN and STX of the 2008 samples only partially agree with the LC-MS-MS data. This might be due to the differences in extraction procedures of the two methods, cross-reactivity issues of the ELISAs for derivatives, in combination with overall very low concentrations of the toxins.

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