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The use of native mosses to monitor fluorine levels―and associated temporal variations―in the vicinity of an aluminium smelter

机译:在铝冶炼厂附近使用天然苔藓监测氟水平和相关的时间变化

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This paper describes an assessment of environmental exposure to fluorine in the surroundings of an aluminium smelter, carried out by measuring fluorine concentrations in the tissues of mosses growing in the area. Forty-two samples were collected from within a 3300 m of radius of the smelter on two different occasions. Samples of either Hypnum cupressiforme Hedw. or Scleropodium purum (Hedw.) Limpr. were collected at each point, depending on which was the most abundant. The fluorine contents in the samples varied from < 10 μg g~(-1) F (the limit of quantification of the analytical technique used) to 154 μg g~(-1) F. To analyse the spatial pattern of fluorine accumulation in the mosses, response surfaces were adjusted to the data using the geographic coordinates of the sampling points as independent variables. Details are given of the process used to select the best surface from among the many candidates available. The graphical and mathematical analyses of the surfaces allowed description of the effect of the distance from the smelter on fluorine concentration and of the spatial anisotropy, i.e. the existence of directions along which fluorine deposition is enhanced. Fluorine concentration decreased exponentially over all the study area, therefore the impact of the smelter decreased greatly within a short distance. The surfaces also allowed detection of differences between sampling times, in terms of the prevailing direction of pollutant movement, as well as differences in the rates of decrease in concentration with distance from the plant. Finally, it is discussed how the particular characteristics of the source of the pollutant affect its dispersal, and how some sampling difficulties encountered affected the results obtained.
机译:本文描述了铝冶炼厂周围环境中氟暴露的环境评估,方法是通过测量该地区生长的苔藓组织中的氟浓度进行。在两种不同的情况下,从冶炼厂半径3300 m范围内收集了42个样品。 Hypnum cupressiforme Hedw的样品。或Scleropodium purum(Hedw。)Limpr。在每个点上进行收集,具体取决于哪一个是最丰富的。样品中的氟含量范围从<10μgg〜(-1)F(所用分析技术的定量极限)到154μgg〜(-1)F。苔藓,响应表面被调整为数据使用采样点的地理坐标作为自变量。给出了从众多可用候选中选择最佳表面的过程的详细信息。表面的图形和数学分析可以描述距冶炼厂的距离对氟浓度的影响以及空间各向异性的影响,即存在沿氟沉积方向增强的方向。在整个研究区域内,氟的浓度呈指数下降,因此,冶炼厂的影响在短时间内大大降低。这些表面还允许检测采样时间之间的差异(就污染物移动的主要方向而言)以及浓度降低率随距工厂的距离的差异。最后,讨论了污染物来源的特殊特性如何影响其扩散,以及遇到的一些采样困难如何影响所获得的结果。

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