德国 Ehrenfriedersdorf 退役锡矿水体中砷和铁行为的综合水文和水化学分析

Viktoria Rafique, M. Grimmer, Florian Scheermann, Marco Roscher, Nils Hoth
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摘要

砷污染对环境和公众健康构成了重大挑战,而采矿活动则加剧了砷的广泛分布。本研究调查了位于德国萨克森自由州 Ehrenfriedersdorf 的一个退役锡矿(现为游客矿)矿井水中砷和铁的去向。尽管数据匮乏是老矿区的普遍现象,但我们还是通过包括矿区总体特征描述、矿井水监测和当地气象数据分析在内的综合方法,探索了气候条件、水文过程以及矿井水中砷和铁行为之间复杂的相互作用。在三年的时间里,我们进行了 14 次采样活动,共采集了 95 个水样,每个水样由三个过滤子样组成,共分析了 285 个水样。这些样本是在地面和地下采集的。地面样本包括矿井流出物、尾矿流出物和邻近的一条小溪,而地下取样点最初分散在整个矿区,后来集中在已确定的 "主要 "矿井水系统。分析得出的化学数据与当地气候水量平衡相关联,揭示了矿井系统内不同地点砷和铁浓度的独特模式。我们的研究结果揭示了矿山的水文行为,有助于阐明降水和潜在蒸散作用对尾矿流出、淹没矿体和主排水廊道入口处砷和铁浓度的影响。我们的研究结果强调了持续监测和利用当地气象数据来了解类似采矿环境中类金属和金属污染风险的重要性。
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Integrated Hydrological and Hydrochemical Analysis of Arsenic and Iron Behavior in Waters of a Decommissioned Tin Mine in Ehrenfriedersdorf, Germany
Arsenic contamination poses significant challenges to environmental and public health, with mining activities contributing to its wider distribution. This study investigates the fate of arsenic and iron in mine waters at a decommissioned tin mine, now a visitor mine, located in Ehrenfriedersdorf, Germany, situated in the Free State of Saxony. Despite the general shortage of data, which is common for old mining sites, we explored the complex interplay of climatic conditions, hydrological processes, and arsenic and iron behavior in the mine waters through a comprehensive approach encompassing general site characterization, mine water monitoring, and analysis of local weather data. Over a period of three years, we conducted 14 sampling campaigns, collecting a total of 95 water samples, each consisting of three filtration subsamples, resulting in the analysis of 285 water samples. These samples were collected both aboveground and underground. Aboveground samples included mine outflows, a tailing outflow, and an adjacent creek, while underground sampling points were scattered throughout the mine initially and later focused on the identified “main” mine water system. The chemical data from the analyses were correlated with local climatic water balances to reveal distinctive patterns in arsenic and iron concentrations at various locations within the mine system. Our findings shed light on the hydrological behavior of the mine, helping to elucidate the impact of precipitation and potential evapotranspiration on arsenic and iron concentrations in a tailing outflow, in the flooded mine body, and at the portal of the main dewatering gallery. Our findings emphasize the importance of sustained monitoring and the utilization of local weather data to comprehend metalloid and metal contamination risks in similar mining environments.
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