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Multivariate analysis reveals significant diuron-related changes in the soil composition of different Brazilian regions

机译:多变量分析显示巴西不同地区土壤成分中与敌草隆相关的重大变化

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摘要

Sorption and desorption determine the amount of an herbicide in soil solution. Therefore, knowledge of the sorption and desorption coefficients in different soils is an essential factor to estimate the potential for environmental contamination by herbicides. We evaluated the feasibility of multivariate and linear discriminant analyses to predict the sorption and desorption capacity of a soil for diuron, one of the most used herbicides on sugarcane plantations. The adsorptive capacity in twenty-seven Brazilian soil samples was estimated using the sorption constant (Kfs) and desorption constant (Kfd) obtained by the Freundlich isotherms. The regression model was created from the sorbed and nonsorbed concentrations of diuron in soils. Ultra-performance liquid chromatography was applied to quantify the diuron concentrations. The multivariate analysis separated the soils into four groups considering the similarity of the following attributes: pH, organic matter, clay, and base saturation. The groups showed a similar pattern of sorption and desorption for diuron: Lom-Lclay: low sorption (5.9 ± 1.2) and high desorption (10.9 ± 0.6); Lclay: low sorption (7.5 ± 1.1) and high desorption (11.4 ± 1.3); Hom-Hclay: high sorption (11.2 ± 1.2) and low desorption (13.8 ± 1.2); HpH-Hclay: high sorption (10.1 ± 1.1) and medium desorption (11.5 ± 1.4). Linear discriminant analysis of these soil attributes was used to classify other soils described in the literature with adsorption capacity. This analysis was able to identify soils with high and low sorption using the pH, organic matter, clay, and base saturation, demonstrating the enormous potential of the technique to group soils with different contamination risks for subterranean waters. Sugarcane crops in northeastern Brazil showed a higher pollution risk through the leaching of diuron. Multivariate analysis revealed significant diuron-related changes in the soil composition of different Brazilian regions; therefore, this statistical analysis can be used to improve understanding of herbicide behavior in soils.
机译:吸附和解吸确定土壤溶液中除草剂的量。因此,了解不同土壤中的吸附和解吸系数是估算除草剂对环境造成污染的潜在因素。我们评估了多元和线性判别分析的可行性,以预测土壤对敌草隆的吸附和解吸能力,敌草隆是甘蔗种植园上最常用的除草剂之一。使用Freundlich等温线获得的吸附常数(Kfs)和解吸常数(Kfd)估算了27个巴西土壤样品的吸附能力。回归模型是根据土壤中敌草隆的吸附浓度和非吸附浓度创建的。应用超高效液相色谱法定量地隆的​​浓度。考虑到以下属性的相似性,多变量分析将土壤分为四类:pH,有机物,粘土和碱饱和度。各组对敌草隆表现出相似的吸附和解吸模式:Lom-Lclay:低吸附(5.9±1.2)和高吸附(10.9±0.6); Lclay:低吸附(7.5±1.1)和高解吸(11.4±1.3); Hom-Hclay:高吸附(11.2±1.0)和低吸附(13.8±1.2); HpH-Hclay:高吸附(10.1±1.1)和中等解吸度(11.5±1.4)。这些土壤属性的线性判别分析用于对文献中描述的具有吸附能力的其他土壤进行分类。这项分析能够使用pH值,有机物,黏土和碱饱和度来识别具有高吸附性和低吸附性的土壤,证明了该技术将地下水具有不同污染风险的土壤分组的巨大潜力。巴西东北部的甘蔗农作物通过渗入敌草隆显示出更高的污染风险。多变量分析表明,巴西不同地区土壤成分与敌草隆相关的变化显着;因此,该统计分析可用于增进对土壤中除草剂行为的了解。

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