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Multivariate analysis for discriminating profiles of soil heavy metals as influenced by various contamination sources

机译:多元分析以区分受各种污染源影响的土壤重金属特征

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Discriminating between different sources of anthropogenic heavy metal contamination is a topic of scientific interest. The main objective of this study was to demonstrate the efficiency of multivariate statistical methods to provide identification and differentiation of soil heavy metals as affected by three representative contamination sources including traffic, coal-burning power plant and cement plant. A total of 76 soil samples were collected, and the concentrations of 11 heavy metals including Cr, Mn, Fe, Co, Ni, Cu, Zn, Cd, Pb, Sb and Mo were determined by inductively coupled plasma-mass spectrometry (ICP-MS). Analysis of variance (ANOVA) showed that heavy metal concentrations including Cr, Mn, Fe, Co, Ni, Cu, Sb and Mo differed across the sites (p<0.01). Principal component analysis (PCA) was applied to reduce variables, and score plots indicated that soils from the three sites were not distributed separately fully from each other. Discriminant analysis (DA) yielded an overall classification rate of 98.7 %. Copper, Mn, Fe, Ni, Cd, Sb and Mo contributed most to the discriminant function. Our study could be used as a case to provide the usefulness of discriminant analysis in discriminating contamination sources of soil heavy metals in the present study area.
机译:区分人为重金属污染的不同来源是一个具有科学意义的话题。这项研究的主要目的是证明多元统计方法在识别和区分土壤重金属方面的有效性,这些土壤重金属受到交通,燃煤发电厂和水泥厂这三种代表性污染源的影响。总共收集了76个土壤样品,并通过电感耦合等离子体质谱法(ICP-MS)测定了11种重金属的浓度,包括Cr,Mn,Fe,Co,Ni,Cu,Zn,Cd,Pb,Sb和Mo.多发性硬化症)。方差分析(ANOVA)显示,各地点之间的重金属浓度(包括Cr,Mn,Fe,Co,Ni,Cu,Sb和Mo)均不同(p <0.01)。应用主成分分析(PCA)来减少变量,得分图表明,这三个地点的土壤并未完全分开分布。判别分析(DA)得出的总体分类率为98.7%。铜,锰,铁,镍,镉,锑和钼对判别功能的贡献最大。我们的研究可以作为案例,提供判别分析在鉴别本研究区土壤重金属污染源方面的有用性。

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