Coaxial burner system for solid-sample flame emission spectroscopy

IF 2.7 3区 化学 Q2 CHEMISTRY, ANALYTICAL Analytical Methods Pub Date : 2024-09-13 DOI:10.1039/D4AY01183J
Adam Bernicky, Boyd Davis and Hans-Peter Loock
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Abstract

We present a burner system to analyze solid, inflammable samples by flame emission spectroscopy without requiring any sample preparation procedures. An acetylene–nitrous oxide burner was designed to efficiently introduce solid particles into the flame through active injection, enabling real-time elemental analysis. Computational fluid dynamics (CFD) simulations were employed to study particle transport dynamics within the burner system. The emission was characterized through spectral analysis of the flame emission from copper- and iron-metal powder mixtures, demonstrating its ability to determine elemental compositions without prior sample treatment. An artificial neural network (ANN) was implemented to analyze spectral data obtained from binary Cu/Fe metal mixtures, enabling rapid and reliable identification of constituent elements with an uncertainty of σ = 2.7 mol%. The blackbody temperature could be determined in the range of 2200–2600 K with an accuracy of 7 K.

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用于固体样品火焰发射光谱的同轴燃烧器系统
我们介绍了一种燃烧器系统,无需任何样品制备程序,即可通过火焰发射光谱分析固体易燃样品。我们设计了一种乙炔-氧化亚氮燃烧器,通过主动注入将固体颗粒有效地引入火焰,从而实现实时元素分析。计算流体动力学(CFD)模拟用于研究燃烧器系统内的颗粒传输动力学。通过对铜和铁金属粉末混合物的火焰发射进行光谱分析,确定了发射的特征,证明了其无需事先处理样品即可确定元素组成的能力。采用人工神经网络 (ANN) 分析从二元铜/铁金属混合物中获得的光谱数据,可快速、可靠地确定组成元素,不确定度为 σ = 2.7 摩尔%。黑体温度的测定范围为 2200-2600 K,精确度为 7 K。
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来源期刊
Analytical Methods
Analytical Methods CHEMISTRY, ANALYTICAL-FOOD SCIENCE & TECHNOLOGY
CiteScore
5.10
自引率
3.20%
发文量
569
审稿时长
1.8 months
期刊介绍: Early applied demonstrations of new analytical methods with clear societal impact
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