Calibration of the Composition of Low-Alloy Steels by the Interval Partial Least Squares Using Low-Resolution Emission Spectra with Baseline Correction

IF 0.2 Q4 INSTRUMENTS & INSTRUMENTATION Devices and Methods of Measurements Pub Date : 2024-04-12 DOI:10.21122/2220-9506-2024-15-1-68-77
M. Belkov, K. Catsalap, M. A. Khodasevich, D. Korolko, A. V. Aseev
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Abstract

Express determination of the elemental composition of steels and iron-based alloys is an urgent problem. Laser induced breakdown spectroscopy can be applied for its decision. The disadvantage of single- and multivariate modeling the elemental composition of steels is the semi-quantitative accuracy of the models. The aim of the study was developing quantitative multivariate calibrations of the concentrations of a set of chemical elements sufficient to identify low-alloy steels using low-resolution emission spectra. The multivariate partial least squares method was used to create the calibrations. Reducing the effect of redundancy of wideband emission spectra on the results of quantitative analysis was achieved by searching combination moving window containing one spectral variable more than the optimal number of latent variables for the wideband multivariate model. Further improvement of calibration accuracy was achieved by using the adaptive iteratively reweighted penalized least squares algorithm for spectrum baseline correction. Based on the laser emission spectra of 65 reference samples of low-alloy steels registered in the wavelength range 172–507 nm with a spectral resolution of 0.5 nm and a step of 0.1 nm, the following calibration models were developed: for carbon concentration with a root mean square error 0.059 % in the range ≤ 0.8 %, for manganese – 0.02 % and 2.0 %, respectively, chromium – 0.009 % and 1.0 %, silicon – 0.021 % and 1.2 %, nickel – 0.04 % and 0.8 %, copper – 0.019 % and 0.5 %, vanadium and titanium – 0.005 % without range limitation. The obtained multivariate models are quantitative for eight elements. These models give the possibility to identify the grade of low-alloy steels in an express manner at the stages of production or recycling.
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利用带基线校正的低分辨率发射光谱的区间偏最小二乘法校准低合金钢成分
快速测定钢和铁基合金的元素组成是一个亟待解决的问题。激光诱导击穿光谱法可用于确定元素组成。对钢的元素组成进行单变量和多变量建模的缺点在于模型的半定量准确性。这项研究的目的是利用低分辨率发射光谱,对一组足以识别低合金钢的化学元素浓度进行定量多变量校准。采用多元偏最小二乘法来建立定标。为了减少宽带发射光谱的冗余对定量分析结果的影响,搜索了包含一个光谱变量的组合移动窗口,其数量超过了宽带多元模型的最佳潜变量数量。通过使用自适应迭代加权最小二乘法算法进行光谱基线校正,进一步提高了校正精度。根据 65 个低合金钢参考样本在波长范围 172-507 nm(光谱分辨率为 0.5 nm,步长为 0.1 nm)内记录的激光发射光谱,建立了以下校准模型:碳浓度的均方根误差为 0.059 %,锰分别为 0.02 % 和 2.0 %,铬分别为 0.009 % 和 1.0 %,硅分别为 0.021 % 和 1.2 %,镍分别为 0.04 % 和 0.8 %,铜分别为 0.019 % 和 0.5 %,钒和钛分别为 0.005 %。所获得的多元模型对八种元素进行了定量分析。这些模型可以在生产或回收阶段以明确的方式确定低合金钢的等级。
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Devices and Methods of Measurements
Devices and Methods of Measurements INSTRUMENTS & INSTRUMENTATION-
自引率
25.00%
发文量
18
审稿时长
8 weeks
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