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Assessing mercury pollution in Amazon River tributaries using a Bayesian Network approach

机译:使用贝叶斯网络方法评估亚马逊河支流中的汞污染

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Mercury pollution of water bodies exerts significant human and ecosystem health impacts due to high toxicity. Relatively high levels of mercury have been detected in the Amazon River and its tributaries and associated lakes. The study employed a Bayesian Network approach to investigate the contribution from geogenic sources to mercury pollution of lakes in the Madeira River basin, which is the largest tributary of the Amazon River. It was found that the source indicators of naturally occurring mercury have both, positive and negative relationships with mercury in lake sediments. Although the positive relationships indicated the influence of geological and soil formations, the negative relationships implied that the use of mercury amalgam for gold extraction in artisanal and small-scale mining (ASM), which is the primary anthropogenic source of mercury, also contribute to mercury in Amazon tributaries. This was further evident as mercury concentrations in lake sediments were found to be significantly higher than those in the surrounding rocks. However, potential anthropogenic mercury was attributed to historical inputs from gold mining due to the recent decline of ASM mining practice in the region.
机译:由于高毒性,水体中的汞污染对人类和生态系统健康产生重大影响。在亚马逊河及其支流和相关湖泊中发现了相对较高的汞含量。该研究采用贝叶斯网络方法来调查地源对马德拉河流域(该河是亚马逊河的最大支流)中湖泊汞污染的贡献。人们发现,天然汞的来源指标与湖泊沉积物中的汞有正负关系。尽管积极的关系表明了地质和土壤形成的影响,但消极的关系表明,作为主要的人为汞源的手工和小规模采矿(ASM)中的汞合金用于金提取在亚马逊支流中。由于发现湖中沉积物中的汞浓度明显高于周围岩石中的汞浓度,因此这一点更加明显。然而,由于该地区最近ASM开采实践的减少,潜在的人为汞归因于金矿开采的历史投入。

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