Nutrients in freshwater in Europe

Nutrient conditions in European surface waters have improved in recent decades. Average concentrations of nitrate and phosphate in rivers and total phosphorus in lakes have decreased. In recent years changes in surface water concentrations have levelled off, except for river phosphate which has gradually increased since 2013. There has been little change in groundwater nitrate concentration. Decrease in nutrient concentrations is likely related to improvements in wastewater treatment, the reduction of phosphorus in detergents and measures reducing agricultural inputs.

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Metadata
DPSIR State
Typology Descriptive indicator (Type A - What is happening to the environment and to humans?)
UN SDGs SDG6: Clean water and sanitation
Topics Water, Agriculture and food
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Workflow
Content responsible Head of Group Trine Christiansen
Layout
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"label": "2011", "value": "2011" }, { "label": "2012", "value": "2012" }, { "label": "2013", "value": "2013" }, { "label": "2014", "value": "2014" }, { "label": "2015", "value": "2015" }, { "label": "2016", "value": "2016" }, { "label": "2017", "value": "2017" }, { "label": "2018", "value": "2018" }, { "label": "2019", "value": "2019" }, { "label": "2020", "value": "2020" }, { "label": "2021", "value": "2021" }, { "label": "2022", "value": "2022" } ] }, "title": "Status of nitrates in rivers in European countries", "use_data_sources": true, "variation": null }, "with_metadata_section": true, "with_notes": false }, "498a4dc6-f5da-4fd8-b3de-1308ca19669d": { "@type": "slate", "plaintext": "Rivers that drain land with intense agriculture or a high population density generally have the highest nitrate concentrations . For the period 2020-2022 (Figure 2), the largest proportion of river sites with average nitrate concentrations exceeding 5.6mgNO 3 -N/l (25%) was found in Lithuania. Moreover, Belgium, Czechia, and Switzerland had a high proportion (more than 32%) of sites with concentrations exceeding 3.6mgNO 3 -N/l.", "value": [ { "children": [ { "text": "Rivers that drain land with intense agriculture or a high population density generally have the highest " }, { "children": [ { "text": "nitrate concentrations" } ], "type": "strong" }, { "text": ". For the period 2020-2022 (Figure 2), the largest proportion of river sites with average nitrate concentrations exceeding 5.6mgNO" }, { "children": [ { "text": "3" } ], "type": "sub" }, { "text": "-N/l (25%) was found in Lithuania. Moreover, Belgium, Czechia, and Switzerland had a high proportion (more than 32%) of sites with concentrations exceeding 3.6mgNO" }, { "children": [ { "text": "3" } ], "type": "sub" }, { "text": "-N/l." } ], "type": "p" } ] }, "d3d49723-14e5-4663-b346-37ee3572f28d": { "@type": "slate", "fixed": true, "instructions": { "content-type": "text/html", "data": "<p><br/></p>", "encoding": "utf8" }, "plaintext": "", "readOnlySettings": true, "required": true, "value": [ { "children": [ { "text": "" } ], "type": "p" } ] }, "d91963d7-65c9-4a29-a700-e668f5e3354e": { "@type": "slate", "plaintext": "There has been a significant decrease in river nitrate concentrations at 49% of the monitoring sites since 1992. An an increase is shown at 12% of the sites. Czechia, Denmark, Germany and Slovakia had the highest proportion of significantly decreasing trends (82-100%). Spain and Switzerland had similar proportions of significantly increasing and decreasing trends, while Estonia and Lithuania had the highest proportion of significantly increasing trends (44% and 59%, respectively). An overall decline, although slowing in recent years, is observed for Belgium, Czechia, Cyprus, Denmark, Germany, Serbia and Sweden, contributing to the pattern seen in the European time series. Other country time series show different patterns.", "value": [ { "children": [ { "text": "There has been a significant decrease in river nitrate concentrations at 49% of the monitoring sites since 1992. An an increase is shown at 12% of the sites. Czechia, Denmark, Germany and Slovakia had the highest proportion of significantly decreasing trends (82-100%). Spain and Switzerland had similar proportions of significantly increasing and decreasing trends, while Estonia and Lithuania had the highest proportion of significantly increasing trends (44% and 59%, respectively). An overall decline, although slowing in recent years, is observed for Belgium, Czechia, Cyprus, Denmark, Germany, Serbia and Sweden, contributing to the pattern seen in the European time series. Other country time series show different patterns." } ], "type": "p" } ] }, "853077f7-bc92-47cf-b39d-4cbc2337804c": { "@type": "group", "className": "figure-metadata", "id": "figure-metadata-02ba4a04-fcfe-4968-806f-1dac3119cfef", "data": { "blocks": { "ace7f39d-90d0-4927-a2f7-42ca34cc3450": { "@type": "slate", "value": [ { "type": "h3-light", "children": [ { "text": "Figure 2. Status of nitrates in rivers in European countries" } ] } ], "plaintext": "Figure 2. Status of nitrates in rivers in European countries" } }, "blocks_layout": { "items": [ "ace7f39d-90d0-4927-a2f7-42ca34cc3450" ] } }, "styles": {} }, "43df8fab-b278-4b0e-a62c-ce6b8e0a881e": { "@type": "dividerBlock", "section": false, "short": true, "disableNewBlocks": true, "fixed": true, "hidden": true, "readOnly": true, "required": true, "spacing": "m", "fitted": false } }, "blocks_layout": { "items": [ "853077f7-bc92-47cf-b39d-4cbc2337804c", "02ba4a04-fcfe-4968-806f-1dac3119cfef", "43df8fab-b278-4b0e-a62c-ce6b8e0a881e", "498a4dc6-f5da-4fd8-b3de-1308ca19669d", "d91963d7-65c9-4a29-a700-e668f5e3354e" ] } }, "disableInnerButtons": true, "disableNewBlocks": false, "fixed": true, "ignoreSpaces": true, "instructions": { "content-type": "text/html", "data": "<ol keys=\"9bbul,b1sa2,171og,1c1t5\" depth=\"0\"><li>Depending on the indicator context, this text can provide information at country level or, if this is not relevant, at some other level, e.g. sectoral, regional level.</li><li>This 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period and whether or not it helps to achieve the associated policy objective, which can be either quantitative or directional.</p><p>In the absence of a policy objective, it explains whether the trend is in the right or wrong direction in relation to the issue examined.</p><p>If there has been an important change over the most recent period of the time series, e.g. over the last year, this is indicated too.</p><p>Furthermore, if there is a quantitative target, it also indicates whether we are on track to meet it and if not what are the reasons preventing that, e.g. socio-economic drivers, implementation gap etc.</p>", "encoding": "utf8" }, "placeholder": "Summary", "plaintext": "Nutrient conditions in European surface waters have improved in recent decades. Average concentrations of nitrate and phosphate in rivers and total phosphorus in lakes have decreased. In recent years changes in surface water concentrations have levelled off, except for river phosphate which has gradually increased since 2013. There has been little change in groundwater nitrate concentration. Decrease in nutrient concentrations is likely related to improvements in wastewater treatment, the reduction of phosphorus in detergents and measures reducing agricultural inputs.", "readOnlySettings": true, "required": true, "value": [ { "children": [ { "text": "Nutrient conditions in European surface waters have improved in recent decades. Average concentrations of nitrate and phosphate in rivers and total phosphorus in lakes have decreased. In recent years changes in surface water concentrations have levelled off, except for river phosphate which has gradually increased since 2013. There has been little change in groundwater nitrate concentration. Decrease in nutrient concentrations is likely related to improvements in wastewater treatment, the reduction of phosphorus in detergents and measures reducing agricultural inputs." } ], "type": "p" } ] }, "3cccc2bb-471a-44c7-b006-5595c4713ff2": { "@type": "layoutSettings", "disableNewBlocks": true, "fixed": true, "layout_size": "narrow_view", "readOnly": true, "readOnlySettings": true, "required": true }, "ddde07aa-4e48-4475-94bd-e1a517d26eab": { "copyrightIcon": "ri-copyright-line", "styles": {}, "variation": "default", "@type": "title", "disableNewBlocks": true, "fixed": true, "hideContentType": true, "hideCreationDate": true, "hideDownloadButton": true, "hideModificationDate": true, "placeholder": "Indicator title", "readOnlySettings": true, "required": true } }, "blocks_layout": { "items": [ "ddde07aa-4e48-4475-94bd-e1a517d26eab", "1c31c956-5086-476a-8694-9936cfa6c240", "3cccc2bb-471a-44c7-b006-5595c4713ff2" ] } }, "disableInnerButtons": true, "disableNewBlocks": true, "fixed": true, "fixedLayout": true, "ignoreSpaces": true, "instructions": { "content-type": "text/html", "data": "<p>The summary tells the reader about the indicator trend over the examined period and whether or not it helps to achieve the associated policy objective, which can be either quantitative or directional.</p><p>In the absence of a policy objective, it explains whether the trend is in the right or wrong direction in relation to the issue examined.</p><p>If there has been an important change over the most recent period of the time series, e.g. over the last year, this is indicated too.</p><p>Furthermore, if there is a quantitative target, it also indicates whether we are on track to meet it and if not what are the reasons preventing that, e.g. socio-economic drivers, implementation gap etc.</p>", "encoding": "utf8" }, "maxChars": "500", "readOnlySettings": true, "required": true, "styles": { "style_name": "environment-theme-bg" }, "title": "Content header" }, "e9736b7c-4902-48aa-aecd-b706409a576d": { "@type": "dividerBlock", "disableNewBlocks": true, "fixed": true, "hidden": true, "readOnly": true, "required": true, "section": false, "spacing": "m", "styles": {} }, "f5d5cf58-e7bd-4ade-9382-1e64ba680bca": { "@layout": "1bc4379d-cddb-4120-84ad-5ab025533b12", "@type": "group", "allowedBlocks": [ "slate" ], "as": "section", "block": "f5d5cf58-e7bd-4ade-9382-1e64ba680bca", "data": { "blocks": { "1ca47351-60b5-412f-80d1-1fc2e5467c4c": { "@type": "slate", "plaintext": "There has been a gradual reduction in average total phosphorus concentration in European lakes since 1992, although the concentration settles from 2015. The concentration level is somewhat higher for the shorter, more representative time series. As urban wastewater treatment has improved, phosphorus from detergents has been reduced, and many wastewater outlets have been diverted away from lakes. Therefore, phosphorus from point sources has become less significant. However, diffuse run-off from agricultural land continues to be a major phosphorus source in European lakes. Phosphorus stored in sediment can keep lake concentrations high despite a reduction in inputs.", "value": [ { "children": [ { "text": "There has been a gradual reduction in average total phosphorus concentration in European lakes since 1992, although the concentration settles from 2015. The concentration level is somewhat higher for the shorter, more representative time series. As urban wastewater treatment has improved, phosphorus from detergents has been reduced, and many wastewater outlets have been diverted away from lakes. Therefore, phosphorus from point sources has become less significant. However, diffuse run-off from agricultural land continues to be a major phosphorus source in European lakes. Phosphorus stored in sediment can keep lake concentrations high despite a reduction in inputs." } ], "type": "p" } ] }, "1dae1c7e-cc9e-45e6-883f-1b54b8b74683": { "@type": "slate", "plaintext": " Total phosphorus in lakes ", "value": [ { "children": [ { "text": "" }, { "children": [ { "text": "Total phosphorus in lakes" } ], "type": "b" }, { "text": "" } ], "type": "p" } ] }, "208fdd68-a059-4add-a353-ac9e763024c0": { "@type": "slate", "plaintext": " Nitrate in groundwater ", "value": [ { "children": [ { "text": "" }, { "children": [ { "text": "Nitrate in groundwater" } ], "type": "b" }, { "text": "" } ], "type": "p" } ] }, "2dfac162-a393-45a0-b66d-af28f499833e": { "@type": "slate", "plaintext": " The average phosphate concentration in European rivers more than halved over the period 1992-2011. The marked decline is also evident for the shorter time series, however the average concentration is somewhat higher. From 2011 onwards, the concentration levels off and increases in the last few years, indicating a need for further measures. The overall decrease in river phosphate can be related to measures introduced by national and European legislations, e.g. the Urban Waste Water Treatment Directive . Furthermore, the change to phosphate-free detergents has contributed to lower phosphate concentrations.", "value": [ { "children": [ { "text": "" }, { "children": [ { "text": "" } ], "type": "b" }, { "text": "The average phosphate concentration in European rivers more than halved over the period 1992-2011. The marked decline is also evident for the shorter time series, however the average concentration is somewhat higher. From 2011 onwards, the concentration levels off and increases in the last few years, indicating a need for further measures. The overall decrease in river phosphate can be related to measures introduced by national and European legislations, e.g. the " }, { "children": [ { "text": "Urban Waste Water Treatment Directive" } ], "data": { "url": "https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX:31991L0271" }, "type": "link" }, { "text": ". Furthermore, the change to phosphate-free detergents has contributed to lower phosphate concentrations." } ], "type": "p" } ] }, "3fe68de9-3cd7-4074-adc4-6e263c3cd2a3": { "@type": "slate", "plaintext": " Phosphate in rivers ", "value": [ { "children": [ { "text": "" }, { "children": [ { "text": "Phosphate in rivers" } ], "type": "b" }, { "text": "" } ], "type": "p" } ] }, "51c8db5c-e230-408d-91ad-fe474cce3c75": { "@type": "slate", "plaintext": " Nitrate in rivers ", "value": [ { "children": [ { "text": "" }, { "children": [ { "text": "Nitrate in rivers" } ], "type": "b" }, { "text": "" } ], "type": "p" } ] }, "5d7a0d7a-7c6d-4f98-97af-77f84d253fa6": { "@type": "slate", "plaintext": "The average nitrate concentration in European rivers decreased steadily over the period 1992-2012 and has levelled off since. The shorter time series is parallel to the longer series, yet the concentration level is lower. Agriculture remains the main contributor to nitrogen pollution, however the EU Nitrates Directive and national measures have contributed to lower concentrations and the apparent stabilisation in recent years calls for further measures.", "value": [ { "children": [ { "text": "The average nitrate concentration in European rivers decreased steadily over the period 1992-2012 and has levelled off since. The shorter time series is parallel to the longer series, yet the concentration level is lower. Agriculture remains the main contributor to nitrogen pollution, however the EU " }, { "children": [ { "text": "Nitrates Directive" } ], "data": { "url": "https://eur-lex.europa.eu/legal-content/EN/TXT/?qid=1561542776070&uri=CELEX:01991L0676-20081211" }, "type": "link" }, { "text": " and national measures have contributed to lower concentrations and the apparent stabilisation in recent years calls for further measures." } ], "type": "p" } ] }, "6425a9c0-b831-4050-b2a2-0b7a30cd4ecd": { "@type": "slate", "plaintext": "The average nitrate concentration in European groundwater is fluctuating around the same level and there is no clear trend (Figure 1). The shorter, but more representative time series starting in 2000 follows the longer one closely. 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Nutrient trends in European water bodies" } ] } ], "plaintext": "Figure 1. Nutrient trends in European water bodies" } }, "blocks_layout": { "items": [ "bdac7c19-8d80-47d3-8fb5-3ac30fea5ced" ] } }, "styles": {} }, "43df8fab-b278-4b0e-a62c-ce6b8e0a881d": { "@type": "dividerBlock", "section": false, "short": true, "disableNewBlocks": true, "fixed": true, "hidden": true, "readOnly": true, "required": true, "styles": {}, "spacing": "m", "fitted": false } }, "blocks_layout": { "items": [ "697af80a-1976-47a7-8b23-2701d333983e", "b0279dde-1ceb-4137-a7f1-5ab7b46a782c", "43df8fab-b278-4b0e-a62c-ce6b8e0a881d", "208fdd68-a059-4add-a353-ac9e763024c0", "6425a9c0-b831-4050-b2a2-0b7a30cd4ecd", "51c8db5c-e230-408d-91ad-fe474cce3c75", "5d7a0d7a-7c6d-4f98-97af-77f84d253fa6", "3fe68de9-3cd7-4074-adc4-6e263c3cd2a3", "2dfac162-a393-45a0-b66d-af28f499833e", "1dae1c7e-cc9e-45e6-883f-1b54b8b74683", "1ca47351-60b5-412f-80d1-1fc2e5467c4c" ] } }, "disableInnerButtons": true, "disableNewBlocks": false, "fixed": true, "ignoreSpaces": true, "instructions": { "content-type": "text/html", "data": "<p><strong>Assessment text remains at</strong> <strong>the relevant</strong> <strong>aggregate level</strong> <strong>(i.e.</strong> <strong>global, EU, sectoral)</strong> <strong>and addresses the following: </strong></p><ol keys=\"dkvn8,e367c,f4lpb,9j981,7ai6k,3g3pd\" depth=\"0\"><li>Explains in one or two sentences on the environmental rationale of the indicator, i.e. why it matters to the environment that we see an increase/decrease in the value measured.</li><li>Explains in one or two sentences the associated policy objective, which can be either quantitative or directional. More information on the policy objective and related references will be included in the supporting information section. Where there is no policy objective associated with the indicator, i.e. where the indicator addresses an issue that is important for future policy formulation, this text should explain instead why this issue is important.</li><li>IF NECESSARY - Explains any mismatch between what the indicator tracks and what the policy objective/issue is.</li><li>Qualifies the historical trend (e.g. steady increase) and explains the key reasons (e.g. policies) behind it. If there is a quantitative target it explains if we are on track to meet it.</li><li>IF NECESSARY - Explains any recent changes to the trend and why.</li><li>IF NECESSARY - Describes what needs to happen to see adequate progress in future, for instance in order to remain on track to meet targets.</li></ol><p><strong>Please cite your work if</strong> <strong>necessary</strong> <strong>using the EEA citation style (i.e.</strong> <strong>EEA, 2020). A full reference list appears in the supporting information section.</strong></p>", "encoding": "utf8" }, "maxChars": "2000", "placeholder": "Aggregate level assessment e.g. progress at global, EU level..", "readOnlySettings": true, "required": true, "title": "Aggregate level assessment" } }
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Supporting information
Methodology [ { "children": [ { "text": "Annual mean concentrations are used as a basis in the indicator analyses. The aggregation to annual mean concentrations is done by the EEA, unless the country has reported aggregated data only. " } ], "type": "p" }, { "children": [ { "text": " " } ], "type": "p" }, { "children": [ { "text": "" }, { "children": [ { "text": "Automatic quality control procedures" } ], "data": { "url": "https://cdr.eionet.europa.eu/help/WISE_SoE/wise6/WISE6_RN3_QC_tests_2024" }, "type": "link" }, { "text": " are applied both to the disaggregated and aggregated data, excluding data failing the tests from further analysis. In addition, a semi-manual procedure is applied, focusing on suspicious values having a major impact on the country time series and on the most recently reported data. This comprises e.g.: " } ], "type": "p" }, { "children": [ { "children": [ { "text": "outliers;" } ], "type": "li" }, { "children": [ { "text": "consecutive values deviating strongly from the rest of the time series;" } ], "type": "li" }, { "children": [ { "text": "whole time series deviating strongly in level compared to other time series for that country and determinand;" } ], "type": "li" }, { "children": [ { "text": "where values for a specific year are consistently far higher or lower than the remaining values for that country and determinand." } ], "type": "li" } ], "type": "ul" }, { "children": [ { "text": "Such values are removed from the analysis and checked with the country." } ], "type": "p" }, { "children": [ { "text": " " } ], "type": "p" }, { "children": [ { "text": "For time series analyses, only complete series after inter/extrapolation are used. This is to ensure that the aggregated time series are consistent, i.e. including the same sites throughout. Inter/extrapolation of gaps up to three years are allowed, to increase the number of available time series. At the beginning or end of the data series missing values are replaced by the first or last value of the original data series, respectively. In the middle of the data series, missing values are linearly interpolated. The selected time series are aggregated to country and European level by averaging across all sites for each year." } ], "type": "p" }, { "children": [ { "text": " " } ], "type": "p" }, { "children": [ { "text": "Trends are analysed with the Mann-Kendall " }, { "type": "link", "data": { "url": "https://cran.r-project.org/web/packages/wql/vignettes/wql-package.html" }, "children": [ { "text": "method" } ] }, { "text": "\u00a0in the free " }, { "children": [ { "text": "software R" } ], "data": { "url": "https://www.r-project.org/" }, "type": "link" }, { "text": ", using the wql package. This is a non-parametric test suggested by\u00a0" }, { "children": [ { "text": "Mann (1945)" } ], "data": { "url": "https://www.jstor.org/stable/1907187" }, "type": "link" }, { "text": "\u00a0and has been extensively used for " }, { "children": [ { "text": "environmental time series" } ], "data": { "url": "https://shop.elsevier.com/books/time-series-modelling-of-water-resources-and-environmental-systems/hipel/978-0-444-89270-6" }, "type": "link" }, { "text": ". Mann-Kendall is a test for a monotonic trend in a time series y(x), which in this analysis is nutrient concentration (y) as a function of year (x). The size of the change is estimated by calculating the Sen slope (" }, { "children": [ { "text": "Theil, 1992" } ], "data": { "url": "https://link.springer.com/chapter/10.1007/978-94-011-2546-8_20" }, "type": "link" }, { "text": "; " }, { "children": [ { "text": "Sen, 1968" } ], "data": { "url": "https://www.tandfonline.com/doi/abs/10.1080/01621459.1968.10480934" }, "type": "link" }, { "text": "). Absolute and relative Sen slopes are summarized across Europe and countries by averaging. For the trend analysis the same time series as for the time series analysis are used, but without gap filling." } ], "type": "p" }, { "children": [ { "text": "" } ], "type": "p" }, { "children": [ { "text": "For analysis of the present state, average concentrations are calculated across the last three years with data. In this way data from far more groundwater bodies and lake and river sites can be used than in the time series analysis. The 3-year average is used to remove some inter-annual variability. Also, since data are not available for all sites each year, selecting data from three years gives more sites. The sites are assigned to different concentration classes and summarised per country (percentage of sites per concentration class). The purpose of the analysis is to compare the distribution of concentrations among countries. The class boundaries are thus mainly selected to represent the range of concentrations and are neither linked to targets or goals of specific policies nor to national based thresholds. The only exception is the threshold of 50mgNO" }, { "children": [ { "text": "3" } ], "type": "sub" }, { "text": "/l (11.3mgNO" }, { "children": [ { "text": "3" } ], "type": "sub" }, { "text": "-N/l), which is related to the maximum allowable concentration for nitrate in the " }, { "children": [ { "text": "Drinking Water Directive (2020/2184" } ], "data": { "url": "https://eur-lex.europa.eu/eli/dir/2020/2184/oj" }, "type": "link" }, { "text": ") and the " }, { "children": [ { "text": "Groundwater Directive (2006/118)" } ], "data": { "url": "https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX:32006L0118" }, "type": "link" }, { "text": "." } ], "type": "p" } ]
Data sources and providers { "readOnly": true, "data": [ { "@id": "ca5368e2-2339-417e-b25f-2097f7feb55e", "link": "https://www.eea.europa.eu/en/datahub/datahubitem-view/fbf3717c-cd7b-4785-933a-d0cf510542e1?activeAccordion=1092907", "organisation": "European Environment Agency (EEA)", "title": "Waterbase - Water Quality ICM" } ] }
Definition [ { "children": [ { "text": "This indicator shows concentrations of phosphate and nitrate in rivers, total phosphorus in lakes and nitrate in groundwater bodies. The indicator can be used to illustrate geographical variations in current nutrient concentrations and temporal trends. Large inputs of nitrogen and phosphorus to water bodies from waste water and agricultural areas can lead to eutrophication. This causes ecological changes that can result in a loss of aquatic biodiversity (reduction in ecological status) and can have negative impacts on the use of water for human consumption and recreation." }, { "children": [ { "text": "" } ], "type": "b" }, { "text": "" } ], "type": "p" } ]
Unit of measure [ { "children": [ { "text": "The concentration of nitrate is expressed as milligrams of nitrate per litre (mgNO" }, { "children": [ { "text": "3" } ], "type": "sub" }, { "text": "/l) for groundwater and milligrams of nitrate-nitrogen per litre (mgNO" }, { "children": [ { "text": "3" } ], "type": "sub" }, { "text": "-N/l) for rivers." } ], "type": "p" }, { "children": [ { "text": " " } ], "type": "p" }, { "children": [ { "text": "The concentration of phosphate in rivers is expressed as milligrams of phosphate-phosphorus per litre (mgPO" }, { "children": [ { "text": "4" } ], "type": "sub" }, { "text": "-P/l) and total phosphorus in lakes is expressed as milligrams of phosphorus per litre (mgP/l)" } ], "type": "p" }, { "children": [ { "text": " " } ], "type": "p" }, { "children": [ { "text": "The river sites are assigned to different concentration classes to visualise the distribution (percentage) of data in the dataset." } ], "type": "p" } ]
Policy / environmental relevance [ { "children": [ { "text": "Freshwater quality with respect to eutrophication and nutrient concentration is an objective of several directives and other policies: the\u00a0" }, { "children": [ { "text": "Nitrates Directive" } ], "data": { "url": "https://eur-lex.europa.eu/legal-content/EN/ALL/?uri=CELEX:31991L0676" }, "type": "link" }, { "text": "\u00a0(91/676/EEC); the\u00a0" }, { "children": [ { "text": "Urban Waste Water Treatment Directive" } ], "data": { "url": "https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX%3A31991L0271" }, "type": "link" }, { "text": "\u00a0(91/271/EEC); the\u00a0" }, { "children": [ { "text": "Industrial Emissions Directive" } ], "data": { "url": "https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX%3A32010L0075" }, "type": "link" }, { "text": "\u00a0(2010/75/EU); the\u00a0" }, { "children": [ { "text": "Convention on Long-range Transboundary Air Pollution" } ], "data": { "url": "https://www.unece.org/environmental-policy/conventions/envlrtapwelcome/the-air-convention-and-its-protocols/the-convention-and-its-achievements.html" }, "type": "link" }, { "text": "\u00a0and the\u00a0" }, { "children": [ { "text": "National Emission Ceilings Directive" } ], "data": { "url": "https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=uriserv:OJ.L_.2016.344.01.0001.01.ENG&toc=OJ:L:2016:344:TOC" }, "type": "link" }, { "text": "\u00a0(2016/2284/EU); and the\u00a0" }, { "children": [ { "text": "Water Framework Directive" } ], "data": { "url": "http://ec.europa.eu/environment/water/water-framework/index_en.html" }, "type": "link" }, { "text": "\u00a0(2000/60/EC). The\u00a0" }, { "children": [ { "text": "Drinking Water Directive" } ], "data": { "url": "https://eur-lex.europa.eu/eli/dir/2020/2184/oj" }, "type": "link" }, { "text": "\u00a0(2020/2184) and the " }, { "children": [ { "text": "Groundwater Directive" } ], "data": { "url": "https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=celex%3A32006L0118" }, "type": "link" }, { "text": " (2006/118) sets the maximum allowable concentration for nitrate of 50mgNO" }, { "children": [ { "text": "3" } ], "type": "sub" }, { "text": "/l." } ], "type": "p" }, { "children": [ { "text": " " } ], "type": "p" }, { "children": [ { "text": "Reducing nutrient pollution from agriculture is an aspect of the\u00a0" }, { "children": [ { "text": "European Green Deal" } ], "data": { "url": "https://ec.europa.eu/info/strategy/priorities-2019-2024/european-green-deal_en" }, "type": "link" }, { "text": ", the \u2018" }, { "children": [ { "text": "Farm to Fork\u2019 Strategy" } ], "data": { "url": "https://ec.europa.eu/info/strategy/priorities-2019-2024/european-green-deal/actions-being-taken-eu/farm-fork_en" }, "type": "link" }, { "text": ", the " }, { "children": [ { "text": "Biodiversity Strategy" } ], "data": { "url": "https://environment.ec.europa.eu/strategy/biodiversity-strategy-2030_en" }, "type": "link" }, { "text": "\u00a0and the\u00a0" }, { "children": [ { "text": "Common Agricultural Policy" } ], "data": { "url": "https://ec.europa.eu/info/food-farming-fisheries/key-policies/common-agricultural-policy/cap-glance_en" }, "type": "link" }, { "text": "." } ], "type": "p" } ]
Frequency of dissemination 1
Accuracy and uncertainties [ { "children": [ { "text": "" }, { "children": [ { "text": "Methodology uncertainty" } ], "type": "b" }, { "text": "" } ], "type": "p" }, { "children": [ { "text": "Nutrient conditions vary throughout the year depending on, for example, season and flow conditions. Hence, the annual average concentrations should ideally be based on samples collected throughout the year. Using annual averages representing only part of the year introduces some uncertainty, but it also makes it possible to include more sites, which reduces the uncertainty in spatial coverage. Moreover, the majority of the annual averages represent the whole year." } ], "type": "p" }, { "children": [ { "text": " " } ], "type": "p" }, { "children": [ { "text": "Nitrate concentrations in groundwater originate mainly from anthropogenic activities as a result of agricultural land use. Concentrations in water are the effect of a multidimensional and time-related process, which varies from groundwater body to groundwater body and is less quantified. To properly evaluate the nitrate concentration in groundwater and its development, closely-related parameters such as ammonium and dissolved oxygen should be taken into account." } ], "type": "p" }, { "children": [ { "text": " " } ], "type": "p" }, { "children": [ { "text": "" }, { "children": [ { "text": "Data sets uncertainty" } ], "type": "b" }, { "text": "" } ], "type": "p" }, { "children": [ { "text": "The indicator is meant to give a representative overview of nutrient conditions in European rivers, lakes and groundwater. This means it should reflect the variability in nutrient conditions over space and time. Countries are asked to provide data on rivers, lakes and important groundwater bodies according to specified criteria." } ], "type": "p" }, { "children": [ { "text": "" } ], "type": "p" }, { "children": [ { "text": "The datasets for groundwater and rivers include almost all countries within the EEA, but the time coverage varies from country to country. The coverage of lakes is less good. It is assumed that the data from each country represents the variability in space in their country. Likewise, it is assumed that the sampling frequency is sufficiently high to reflect variability in time. In practice, the representativeness will vary between countries." } ], "type": "p" }, { "children": [ { "text": "" } ], "type": "p" }, { "children": [ { "text": "Each annual update of the indicator is based on the updated set of monitoring sites. This also means that due to changes in the database, including changes in the QC procedure that excludes or re-includes individual sites or samples and retroactive reporting of data for the past periods, which may re-introduce lost time series that were not used in the recent indicator assessments, the derived results of the assessment vary in comparison to previous assessments." } ], "type": "p" }, { "children": [ { "text": "" } ], "type": "p" }, { "children": [ { "text": "Waterbase contains a large amount of data collected over many years. Ensuring the quality of the data has always been a high priority. Still, suspicious values or time series are sometimes detected and the automatic QC routines exclude some of the data. Through the communication with the reporting countries, the quality of the database can be further improved." } ], "type": "p" }, { "children": [ { "text": "" } ], "type": "p" }, { "children": [ { "text": "" }, { "children": [ { "text": "Rationale uncertainty" } ], "type": "b" }, { "text": "" } ], "type": "p" }, { "children": [ { "text": "Using annual average values provides an overview of general trends and geographical patterns in line with the aim of the indicator. However, the severity of shorter-term, high-nutrient periods are not reflected." } ], "type": "p" } ]
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Nutrient trends in European water bodies

This figure shows the trends in nitrate concentrations in European groundwater bodies and rivers, phosphate in rivers and total phosphorus concentration in lakes.