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Visual tool for real-time monitoring of membrane fouling via Raman spectroscopy and process model based on principal component analysis

机译:通过拉曼光谱和基于主成分分析的过程模型实时监测膜污染的可视化工具

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摘要

Membrane fouling, i.e. accumulation of unwanted material on the surface of the membrane is a significant problem in filtration processes since it commonly degrades membrane performance and increases operating costs. Therefore, the advantages of early stage monitoring and control of fouling are widely recognized. In this work, the potential of using Raman spectroscopy coupled to chemometrics in order to quantify degree of membrane fouling in real-time was investigated. The Raman data set collected from adsorption experiments with varying pHs and concentrations of model compound vanillin was used to develop a predictive model based on principal component analysis (PCA) for the quantification of the vanillin adsorbed on the membrane. The correspondence between the predicted concentrations based on the PCA model and actual measured concentrations of adsorbed vanillin was moderately good. The model developed was successful in monitoring both adsorption and desorption processes. Furthermore, the model was able to detect abnormally proceeding experiment based on differentiating PCA score and loading values. The results indicated that the presented approach of using Raman spectroscopy combined with a PCA model has potential for use in monitoring and control of fouling and cleaning in membrane processes.
机译:膜结垢,即不想要的物质在膜表面上的积聚是过滤过程中的重大问题,因为它通常会降低膜的性能并增加运行成本。因此,早期监测和控制结垢的优点已被广泛认可。在这项工作中,研究了将拉曼光谱法与化学计量学结合使用以实时定量膜污染程度的潜力。从具有不同pH值和浓度的模型化合物香兰素的吸附实验中收集的拉曼数据集用于基于主成分分析(PCA)来建立预测模型,以量化吸附在膜上的香兰素。基于PCA模型的预测浓度与吸附的香兰素的实际测量浓度之间的对应程度中等。开发的模型成功地监测了吸附和解吸过程。此外,该模型能够通过区分PCA得分和负荷值来检测异常进行的实验。结果表明,所提出的结合拉曼光谱法和PCA模型的方法具有潜力用于膜工艺中结垢和清洁的监测和控制。

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