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Application of multivariate statistical approach to identify trace elements sources in surface waters: a case study of Kowalskie and Stare Miasto reservoirs Poland

机译:多元统计方法在识别地表水中微量元素来源中的应用:以波兰科瓦斯基和斯塔尔·米亚斯托水库为例

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摘要

The paper reports the results of measurements of trace elements concentrations in surface water samples collected at the lowland retention reservoirs of Stare Miasto and Kowalskie (Poland). The samples were collected once a month from October 2011 to November 2012. Al, As, Cd, Co, Cr, Cu, Li, Mn, Ni, Pb, Sb, V, and Zn were determined in water samples using the inductively coupled plasma with mass detection (ICP-QQQ). To assess the chemical composition of surface water, multivariate statistical methods of data analysis were used, viz. cluster analysis (CA), principal components analysis (PCA), and discriminant analysis (DA). They made it possible to observe similarities and differences in the chemical composition of water in the points of water samples collection, to uncover hidden factors accounting for the structure of the data, and to assess the impact of natural and anthropogenic sources on the content of trace elements in the water of retention reservoirs. The conducted statistical analyses made it possible to distinguish groups of trace elements allowing for the analysis of time and spatial variation of water in the studied reservoirs.
机译:本文报告了在Stare Miasto和Kowalskie(波兰)的低地保留水库中收集的地表水样品中痕量元素浓度的测量结果。从2011年10月至2012年11月每月收集一次样品。使用电感耦合等离子体法测定水样品中的Al,As,Cd,Co,Cr,Cu,Li,Mn,Ni,Pb,Sb,V和Zn。带有质量检测(ICP-MS / MS)。为了评估地表水的化学成分,使用了数据分析的多元统计方法,即。聚类分析(CA),主成分分析(PCA)和判别分析(DA)。他们使得有可能在水样采集点观察水的化学成分的异同,发现解释数据结构的隐藏因素,并评估自然和人为来源对痕量含量的影响。滞留池水中的元素。进行的统计分析使区分痕量元素组成为可能,从而可以分析研究水库中水的时间和空间变化。

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