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Univariate and Multivariate Analysis of Phosphorus Element in Fertilizers Using Laser-Induced Breakdown Spectroscopy

机译:利用激光诱导击穿光谱法对肥料中的磷元素进行单变量和多元分析

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摘要

Rapid detection of phosphorus (P) element is beneficial to the control of compound fertilizer production process and is of great significance in the fertilizer industry. The aim of this work was to compare the univariate and multivariate analysis of phosphorus element in compound fertilizers and obtain a reliable and accurate method for rapid detection of phosphorus element. A total of 47 fertilizer samples were collected from the production line; 36 samples were used as a calibration set, and 11 samples were used as a prediction set. The univariate calibration curve was constructed by the intensity of characteristic line and the concentration of P. The linear correlation coefficient was 0.854 as the existence of the matrix effect. In order to eliminate the matrix effect, the internal standardization as the appropriate methodology was used to increase the accuracy. Using silicon (Si) element as an internal element, a linear correlation coefficient of 0.932 was obtained. Furthermore, the chemometrics model of partial least-squares regression (PLSR) was used to analysis the concentration of P in fertilizer. The correlation coefficient was 0.977 and 0.976 for the calibration set and prediction set, respectively. The results indicated that the LIBS technique coupled with PLSR could be a reliable and accurate method in the quantitative determination of P element in complex matrices like compound fertilizers.
机译:快速检测磷(P)元素有利于控制复合肥料的生产过程,在肥料工业中具有重要意义。这项工作的目的是比较复合肥料中磷元素的单变量和多元分析,并获得一种可靠,准确的方法来快速检测磷元素。从生产线上总共收集了47个肥料样品;将36个样本用作校准集,并将11个样本用作预测集。由特征线的强度和P的浓度建立单变量校正曲线。由于存在矩阵效应,线性相关系数为0.854。为了消除矩阵效应,使用内部标准化作为适当的方法来提高准确性。使用硅(Si)元素作为内部元素,可获得0.932的线性相关系数。此外,使用偏最小二乘回归(PLSR)的化学计量学模型分析了肥料中的P浓度。校准集和预测集的相关系数分别为0.977和0.976。结果表明,LIBS技术与PLSR结合可用于定量测定复杂基质(如复合肥料)中的P元素,是一种可靠而准确的方法。

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