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Analysis of petroleum-contaminated soils by diffuse reflectance spectroscopy and sequential ultrasonic solvent extraction-gas chromatography

机译:扩散反射光谱法和顺序超声溶剂萃取-气相色谱法分析石油污染的土壤

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摘要

In this study, we demonstrate that partial least-squares regression analysis with full cross-validation of spectral reflectance data estimates the amount of polycyclic aromatic hydrocarbons in petroleumcontaminated tropical rainforest soils. We applied the approach to 137 field-moist intact soil samples collected from three oil spill sites in Ogoniland in the Niger Delta province (5.317N, 6.467E), Nigeria. We used sequential ultrasonic solvent extractionegas chromatography as the reference chemical method. We took soil diffuse reflectance spectra with a mobile fibre-optic visible and near-infrared spectrophotometer (350e2500 nm). Independent validation of combined data from studied sites showed reasonable prediction precision (root-mean-square error of prediction ¼ 1.16e1.95 mg kg1, ratio of prediction deviation ¼ 1.86e3.12, and validation r2 ¼ 0.77e0.89). This suggests that the methodology may be useful for rapid assessment of the spatial variability of polycyclic aromatic hydrocarbons in petroleum-contaminated soils in the Niger Delta to inform risk assessment and remediation.
机译:在这项研究中,我们证明了具有光谱反射数据的完整交叉验证的部分最小二乘回归分析估计了石油污染的热带雨林土壤中多环芳烃的含量。我们将该方法应用于从尼日尔三角洲省(5.317N,6.467E)的尼日利亚奥戈尼兰(Ogoniland)的三个漏油地点收集的137个现场湿润的完整土壤样品。我们使用顺序超声溶剂萃取气相色谱作为参考化学方法。我们使用移动式光纤可见光和近红外分光光度计(350e2500 nm)拍摄了土壤的漫反射光谱。来自研究地点的组合数据的独立验证显示了合理的预测精度(预测的均方根误差为¼1.16e1.95 mg kg1,预测偏差的比率为¼1.86e3.12,以及验证r2¼为0.77e0.89)。这表明该方法可用于快速评估尼日尔三角洲石油污染土壤中多环芳烃的空间变异性,从而为风险评估和补救提供依据。

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