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Polarized light based scheme to monitor column performance in a continuous foam fractionation column

机译:基于偏振光的方案来监控连续泡沫分馏塔中的色谱柱性能

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Background A polarized light scattering technique was used to monitor the performance of a continuously operated foam fractionation process. The S11 and S12 parameters, elements of the light scattering matrix, combined together (S11+S12) have been correlated with the bubble size and liquid content for the case of a freely draining foam. The performance of a foam fractionation column is known to have a strong dependence on the bubble size distribution and liquid hold up in foam. In this study the enrichment is used as a metric, representative of foam properties and column performance, and correlated to the S11+S12 parameter. Results Three different superficial gas velocities (6.9, 7.5, and 10.6 cm/min) and four different pH values (4.8, 5.5, 6.5, and 7.5) are tested for the foam fractionation of a dilute solution of bovine serum albumin (0.1 mg/ml). As a result, at scattering angle of 125° the magnitude of S11+S12 is higher as the pH increases. When the bubble sizes are small with a larger liquid content, the foam is strongly back scattering resulting in lower values of S11+S12 (at 125°) at pH = 4.8. The light scattering data and the enrichment values are measured over a period of 90 minutes and correlated using a linear model. The predictive power of the model was found to be statistically significant. Conclusion The time average S11+S12 shows a direct proportionality with the enrichment value, indicating that polarized light should be a valuable technique for monitoring foam fractionation columns. Additional knowledge of the nature of dependence between foam properties and S11+S12 combined with models relating the enrichment to the bubble size and liquid hold up is needed to develop an accurate diagnostics tool for monitoring enrichment utilizing S11+S12 measurements.
机译:背景技术偏振光散射技术用于监测连续操作的泡沫分离过程的性能。对于自由排放的泡沫,S11和S12参数(光散射矩阵的元素)组合在一起(S11 + S12)与气泡大小和液体含量相关。已知泡沫分馏塔的性能强烈依赖于气泡尺寸分布和液体滞留在泡沫中。在这项研究中,富集用作衡量泡沫性质和色谱柱性能的指标,并与S11 + S12参数相关。结果测试了三种不同的表观气体流速(6.9、7.5和10.6 cm / min)和四种不同的pH值(4.8、5.5、6.5和7.5)进行的牛血清白蛋白稀溶液(0.1 mg / min)的泡沫分离。毫升)。结果,在125°的散射角处,随着pH值的增加,S11 + S12的大小更高。当气泡大小较小且液体含量较大时,泡沫会强烈向后散射,导致pH = 4.8时S11 + S12(在125°)的值较低。在90分钟的时间内测量光散射数据和富集值,并使用线性模型进行关联。发现该模型的预测能力具有统计学意义。结论时间平均S11 + S12与富集值成正比,表明偏振光应该是监测泡沫分馏塔的有价值的技术。需要更多有关泡沫性质与S11 + S12之间依赖性的本质的知识,以及将浓缩与气泡大小和液体滞留相关的模型相结合,以开发一种精确的诊断工具,以利用S11 + S12测量来监控浓缩。

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