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首页> 外文期刊>Chemometrics and Intelligent Laboratory Systems >Acoustic chemometrics on liquid flow: Shift in the frequency spectra and its relationship to the physical properties of the liquid and the pipe
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Acoustic chemometrics on liquid flow: Shift in the frequency spectra and its relationship to the physical properties of the liquid and the pipe

机译:液体流动的声学化学计量学:频谱的变化及其与液体和管道物理特性的关系

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Prediction of chemical composition from passive acoustic measurements using multivariate regression (i.e. acoustic chemometrics) from liquid flows has been reported as a promising on-line measurement method. It is recently reported that the important predictive information could be related to frequency shift of peaks in the acoustic spectra. Little casual interpretation of the acoustic spectra is reported. The present study discusses the relations between chemometrically identified significant peak shifts, with prediction information in the acoustic spectra, to physical theory for vibration (sound) in pipe and liquid flows. Acoustic spectra were obtained for the pipe filled with the test liquids both for the situation with no flow and constant flow with a resulting pressure drop. The liquids were two-component mixtures of ethanol and water, and three-component mixtures of ethanol, sucrose and water. Experimental data were compared to the physical theory. Results indicate that some of the peaks in the acoustic spectra relate to bubble oscillation. The other peaks relate to shell (pipe) vibration. In the two-component mixtures measured at a constant flow 14 peaks were identified as important for the prediction of ethanol. Five of these peaks seem to be related to the bubble oscillations and nine peaks seem to agree with the shell vibration theory. The relations between experimental data and physical theory in the three-component mixtures of ethanol, sucrose and water were more complex. Seven peaks were identified as important for the prediction of ethanol. These peaks seem to agree with the bubble oscillation theory. Five peaks were identified as important for sucrose prediction. These peaks seem to relate to the shell (pipe) vibration. The prediction ability of the acoustic spectra for each of the constituents was reasonably good. The density of the liquid is probably the major factor, affecting the peak shift, given an otherwise fixed set-up.
机译:据报道,使用来自液体流动的多元回归(即声学化学计量学)从被动声学测量中预测化学成分是一种有前途的在线测量方法。最近报道,重要的预测信息可能与声谱中峰的频移有关。很少有对声谱的随意解释。本研究讨论了用化学计量学方法识别的明显峰位移与声谱中的预测信息与管道和液体流动中的振动(声音)的物理理论之间的关系。对于没有流动的情况和恒定流动的情况,都获得了充满测试液体的管道的声谱,从而导致压降。液体是乙醇和水的两组分混合物,以及乙醇,蔗糖和水的三组分混合物。实验数据与物理理论进行了比较。结果表明,声谱中的某些峰与气泡振荡有关。其他峰值与壳体(管道)振动有关。在以恒定流量测量的两组分混合物中,鉴定出14个峰对预测乙醇很重要。这些峰中的五个似乎与气泡振荡有关,而九个峰似乎与壳层振动理论一致。在乙醇,蔗糖和水的三组分混合物中,实验数据与物理理论之间的关系更为复杂。鉴定出七个峰对预测乙醇很重要。这些峰值似乎与气泡振荡理论一致。确定了五个峰对预测蔗糖很重要。这些峰值似乎与壳体(管道)振动有关。每种成分的声谱预测能力都相当不错。给定其他设置,液体密度可能是影响峰位移的主要因素。

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