Flame equivalence ratio measurement using data fusion based on laser-induced plasma spectra and acoustic signals

IF 3.1 2区 化学 Q2 CHEMISTRY, ANALYTICAL
Yifan Luo, Yangyang Zhao, Jiaxu Zhang, Nan Li, Linglei He, Yongqiu Zheng and Chenyang Xue
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Abstract

Laser-induced breakdown spectroscopy (LIBS) has been proven to be employed in combustion diagnostics. However, the detection performance of flame equivalence ratios by LIBS could be further improved, since the equivalence ratio is an important parameter for monitoring and optimizing combustion processes. In this work, we propose a measurement method of the flame equivalence ratio based on data fusion by combining laser-induced plasma spectra and acoustic signals. An experimental platform for simultaneous detection of plasma spectra and acoustic signals was established to study the spectral and acoustic characteristics of plasmas in flames with different equivalence ratios. The characteristic lines of C I 247.86 nm, CN (0–0) 388.29 nm, H I 656.28 nm, N I 746.83 nm and O I 777.42 nm were selected for spectral analysis. A gradual increasing and then decreasing trend of line intensities with delay time was obtained, while line intensities gradually increase with the laser energy. It is shown that the optimal spectral detection conditions are a laser energy of 85 mJ and a delay time of 200 ns for obtaining high-quality spectral signals. In addition, the dependence of the flame plasma acoustic signals on detection angles and detection distances was also investigated, with the optimal detection conditions at a detection angle of 30° and a distance of 10 cm. It is found that the spectral line intensity ratios and the peak-to-peak values of acoustic signals both have a strong linear relationship with the flame equivalence ratios, enabling them to be used for the measurement of the equivalence ratio. The prediction performances for flame equivalence ratios of five different methods, including the standard curve method with spectra, PLS-DA with spectra, standard curve method with acoustic signals, PLS-DA with acoustic signals and data fusion, were compared. It is worth noting that the utilization of the data fusion strategy obviously improves the prediction accuracy by integrating the spectral and acoustic features of the plasma, enabling the prediction error of the validation samples to be reduced by 3 times. The present results demonstrate the effectiveness of the data fusion strategy combining spectral and acoustic signals of laser-induced plasmas for the accurate measurement of flame equivalence ratios, which plays an important role in combustion diagnostics.

基于激光诱导等离子体光谱和声学信号的数据融合火焰等效比测量
激光诱导击穿光谱(LIBS)已被证明可用于燃烧诊断。但是,由于等效比是监测和优化燃烧过程的重要参数,LIBS对火焰等效比的检测性能还可以进一步提高。本文提出了一种基于数据融合的激光诱导等离子体光谱与声学信号相结合的火焰等效比测量方法。建立了等离子体光谱和声信号同时检测实验平台,研究了不同等效比下火焰中等离子体的光谱和声特性。选取c.i 247.86 nm、CN (0-0) 388.29 nm、h.i 656.28 nm、n.i 746.83 nm和o.i 777.42 nm的特征谱线进行光谱分析。谱线强度随延迟时间呈先增大后减小的趋势,谱线强度随激光能量的增大而增大。结果表明,激光能量为85 mJ,延迟时间为200 ns,可获得高质量的光谱信号。此外,还研究了火焰等离子体声信号对探测角度和探测距离的依赖关系,最佳探测条件为探测角度为30°,探测距离为10 cm。结果表明,声信号的谱线强度比和峰峰值与火焰等效比具有较强的线性关系,可用于火焰等效比的测量。比较了光谱法标准曲线法、光谱法PLS-DA法、声信号法标准曲线法、声信号法PLS-DA法和数据融合法5种方法对火焰等效比的预测性能。值得注意的是,利用数据融合策略,通过整合等离子体的光谱和声学特征,明显提高了预测精度,使验证样本的预测误差降低了3倍。实验结果表明,结合激光等离子体的光谱和声学信号的数据融合策略在火焰等效比的精确测量中是有效的,在燃烧诊断中起着重要的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.20
自引率
26.50%
发文量
228
审稿时长
1.7 months
期刊介绍: Innovative research on the fundamental theory and application of spectrometric techniques.
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