Historical water chemistry monitoring records from multiple stations between 1959 and 2017
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| Natura: | Dataset Open Access |
| Lingua: | en |
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PANGAEA
2026
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| _version_ | 1867171346088198144 |
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| author | Tian, Mingyang Hartmann, Jens Suitner, Niels Amann, Thorben Kempe, Stephan Lim, Carl Moras, Charly |
| author_facet | Tian, Mingyang Hartmann, Jens Suitner, Niels Amann, Thorben Kempe, Stephan Lim, Carl Moras, Charly |
| collection | Datos científicos de ciencias marinas y ambientales |
| contents | Long-term water-chemistry measurements from multiple Elbe River monitoring stations establish a baseline for carbonate-system variability and were used to assess the alkalinity transport potential. The dataset from 1959 to 1977 was digitized from handwritten notes provided by Dr. Mewius (Kempe 1982). The water chemistry data from 1984 to 2017 (e.g., pH, water temperature, and major ions) was obtained from the Fachinformationssystem (FIS) der FGG Elbe (data source: www.fgg-elbe.de, accessed on 2021-02-26).To generate a single river chemistry time series, data from (Zollenspieker (Strom-km 598,7), Geesthacht (Strom-km 585,9), Schnackenburg (Strom-km 474,5), Boizenburg (Strom-km 559,0), Doemitz (Strom-km 505,0), and Hamburg Waterworks (Strom-km ~623,1) were used. Saturation state of calcite and aragonite were calculated using phreeqpython, a Python wrapper of the PhreeqC engine (Vitens 2021) with pH, water temperature, total alkalinity, and major ions as major input, and phreeqc.dat as database for the thermodynamic data (Parkhurst and Appelo 2013). |
| format | Dataset Open Access |
| id | pangaea_https___doi_org_10_1594_PANGAEA_986597 |
| institution | PANGAEA |
| language | en |
| publishDate | 2026 |
| publisher | PANGAEA |
| record_format | pangaea |
| spellingShingle | Historical water chemistry monitoring records from multiple stations between 1959 and 2017 Tian, Mingyang Hartmann, Jens Suitner, Niels Amann, Thorben Kempe, Stephan Lim, Carl Moras, Charly Alkalinity; Alkalinity, total; Aragonite saturation state; Calcite saturation state; Calcium; Calcium carbonate saturation state; Calculated according to Tian et al. (2025); Carbon dioxide, partial pressure; carbon dioxide removal; CDRmare; Chloride; CLICCS; Cluster of Excellence: Climate, Climatic Change, and Society; DAM CDRmare - RETAKE: CO2 removal by alkalinity enhancement: potential, benefits and risks; DATE/TIME; DEPTH, water; Event label; LATITUDE; LONGITUDE; Magnesium; MON_Boizenburg; MON_Doemitz; MON_Geesthacht; MON_Hamburger_Wasserwerke; MON_Schnackenburg; MON_Zollenspieker; Monitoring station; MONS; ocean alkalinity enhancement; pH; Potassium; Research Mission of the German Marine Research Alliance (DAM): Marine carbon sinks in decarbonisation pathways; RETAKE; River alkalinity enhancement; River geochemistry; salinity level; Sodium; Stability of alkalinity; Station label; Sulfate; Temperature, water Long-term water-chemistry measurements from multiple Elbe River monitoring stations establish a baseline for carbonate-system variability and were used to assess the alkalinity transport potential. The dataset from 1959 to 1977 was digitized from handwritten notes provided by Dr. Mewius (Kempe 1982). The water chemistry data from 1984 to 2017 (e.g., pH, water temperature, and major ions) was obtained from the Fachinformationssystem (FIS) der FGG Elbe (data source: www.fgg-elbe.de, accessed on 2021-02-26).To generate a single river chemistry time series, data from (Zollenspieker (Strom-km 598,7), Geesthacht (Strom-km 585,9), Schnackenburg (Strom-km 474,5), Boizenburg (Strom-km 559,0), Doemitz (Strom-km 505,0), and Hamburg Waterworks (Strom-km ~623,1) were used. Saturation state of calcite and aragonite were calculated using phreeqpython, a Python wrapper of the PhreeqC engine (Vitens 2021) with pH, water temperature, total alkalinity, and major ions as major input, and phreeqc.dat as database for the thermodynamic data (Parkhurst and Appelo 2013). |
| title | Historical water chemistry monitoring records from multiple stations between 1959 and 2017 |
| topic | Alkalinity; Alkalinity, total; Aragonite saturation state; Calcite saturation state; Calcium; Calcium carbonate saturation state; Calculated according to Tian et al. (2025); Carbon dioxide, partial pressure; carbon dioxide removal; CDRmare; Chloride; CLICCS; Cluster of Excellence: Climate, Climatic Change, and Society; DAM CDRmare - RETAKE: CO2 removal by alkalinity enhancement: potential, benefits and risks; DATE/TIME; DEPTH, water; Event label; LATITUDE; LONGITUDE; Magnesium; MON_Boizenburg; MON_Doemitz; MON_Geesthacht; MON_Hamburger_Wasserwerke; MON_Schnackenburg; MON_Zollenspieker; Monitoring station; MONS; ocean alkalinity enhancement; pH; Potassium; Research Mission of the German Marine Research Alliance (DAM): Marine carbon sinks in decarbonisation pathways; RETAKE; River alkalinity enhancement; River geochemistry; salinity level; Sodium; Stability of alkalinity; Station label; Sulfate; Temperature, water |
| url | https://doi.org/10.1594/PANGAEA.986597 |