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Enhanced foam drainage using parallel inclined channels in a single-stage foam fractionation column

机译:在单级泡沫分馏塔中使用平行倾斜通道增强泡沫排放

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A single-stage vertical foam fractionation column was investigated under continuous steady-state experimental conditions. Using a simple power-law expression to describe the drainage velocity through the foam, and in conjunction with continuity arguments, a theoretical framework was developed to analyse the performance of the vertical column. A reduction in the degrees of freedom in the analysis was achieved by using a fixed feed to gas flux ratio to promote a reasonably constant surfactant recovery. It was then possible to measure the process performance by determining the change in the level of enrichment produced from a change in the gas flux, and corresponding change in the feed flux. For a constant recovery, the enrichment is directly proportional to the volume reduction (defined as the ratio of the feed volume processed to foamate volume produced in a given time). The analysis was found to be consistent with experimental data and demonstrated the need to limit the gas flux, and hence the feed flux, to relatively low values in order to produce satisfactory volume reductions, and in turn achieve high enrichment. To overcome this processing constraint, three parallel inclined channels(1) (PIC) were used to provide an effective increase in the vessel area, and hence facilitate the release of the entrained liquid within the foam. A significant increase in the volume reduction was obtained using the inclined channel arrangement. For the same processing rate, the PIC column achieved up to a 4 fold increase in enrichment compared to the vertical column. A slight decrease in recovery, however, was observed using the PIC column. (C) 2010 Elsevier Ltd. All rights reserved.
机译:在连续稳态实验条件下研究了单级立式泡沫分馏塔。使用一个简单的幂律表达式来描述通过泡沫的排水速度,并结合连续性参数,开发了一个理论框架来分析立柱的性能。通过使用固定的进料与气体通量比来促进合理恒定的表面活性剂回收率,可以降低分析的自由度。然后可以通过确定由气体通量的变化和进料通量的变化产生的富集水平的变化来测量工艺性能。为了获得恒定的回收率,浓缩量与体积减少量成正比(定义为在给定时间内加工的进料量与产生的泡沫量之比)。发现该分析与实验数据是一致的,并且表明需要将气体通量和进料通量限制在相对较低的值,以产生令人满意的体积减小并进而实现高浓缩。为了克服这一处理限制,使用了三个平行的倾斜通道(PIC)来有效增加容器面积,从而促进泡沫中夹带液体的释放。使用倾斜的通道装置可以大大减少体积。在相同的处理速率下,与垂直色谱柱相比,PIC色谱柱的富集提高了4倍。但是,使用PIC色谱柱观察到回收率略有下降。 (C)2010 Elsevier Ltd.保留所有权利。

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