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Multivariate methods for evaluating the efficiency of electrodialytic removal of heavy metals from polluted harbour sediments

机译:评估受污染港口沉积物中重金属电渗析效率的多变量方法

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Chemometrics was used to develop a multivariate model based on 46 previously reported electrodialytic remediation experiments (EDR) of five different harbour sediments. The model predicted final concentrations of Cd, Cu, Pb and Zn as a function of current density, remediation time, stirring rate, dry/wet sediment, cell set-up as well as sediment properties. Evaluation of the model showed that remediation time and current density had the highest comparative influence on the clean-up levels. Individual models for each heavy metal showed variance in the variable importance, indicating that the targeted heavy metals were bound to different sediment fractions. Based on the results, a PLS model was used to design five new EDR experiments of a sixth sediment to achieve specified clean-up levels of Cu and Pb. The removal efficiencies were up to 82 for Cu and 87 for Pb and the targeted clean-up levels were met in four out of five experiments. The clean-up levels were better than predicted by the model, which could hence be used for predicting an approximate remediation strategy; the modelling power will however improve with more data included.
机译:化学计量学基于先前报道的 46 个不同港口沉积物的电渗解修复实验 (EDR) 开发了一个多变量模型。该模型预测了 Cd、Cu、Pb 和 Zn 的最终浓度与电流密度、修复时间、搅拌速率、干/湿沉积物、细胞设置以及沉积物特性的关系。模型评估表明,修复时间和电流密度对清理水平的比较影响最大。每种重金属的单独模型在变量重要性上显示出差异,表明目标重金属与不同的沉积物组分结合。基于结果,使用PLS模型设计了第六个沉积物的五个新的EDR实验,以达到指定的Cu和Pb净化水平。Cu的去除效率高达82%,Pb的去除效率高达87%,在五分之四的实验中达到了目标净化水平。清理水平优于模型预测的水平,因此可用于预测近似的修复策略;然而,随着更多数据的加入,建模能力将得到提高。

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