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Optimizing micro-foam rheology for soil remediation

机译:优化土壤修复微泡沫流变学

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In situ foam flushing has proved to be an efficient process for removing oil from contaminated soils. The drawback is that foams are thermodynamically unstable and also produce a significant pressure gradient as they pass through porous media. The use of micro-foams, usually called colloidal gas aphrons (CGAs), instead of regular foams minimizes the pressure gradient owing to their reduced size and increased stability. Furthermore, there is a lack of information as far as the micro-foam rheology is concerned. The present paper describes how the formulation and the generation conditions can affect the CGA flow properties. The effects of the surfactant concentration, the bubble size distribution and the gas volume fraction on the rheology of CGAs were quantified using a capillary viscometer. The results showed that CGAs display strong shear-thinning behavior, decreasing their apparent viscosity with increasing shear rate. It was also verified that the apparent viscosity of the CGAs increases as the surfactant concentration is enhanced. Finally, it was observed that there is a significant increment in the apparent viscosity, the yield stress and the mean bubble diameter of CGAs when the gas volume fraction is increased, especially above the critical volume fraction value (Φ_c ~ 0.65). This behavior confirms that CGAs are able to form packing structures.
机译:原位泡沫冲洗已被证明是一种高效的方法,用于从受污染的土壤中去除油。缺点是泡沫是热力学上不稳定的,并且当它们通过多孔介质时也产生显着的压力梯度。使用微泡沫,通常称为胶体气体蚜(CGA),而不是常规泡沫,由于其尺寸减小和稳定性而使压力梯度最小化。此外,只要微泡沫流变学关注,就缺乏信息。本文介绍了配方和发电条件如何影响CGA流动性质。使用毛细管粘度计定量表面活性剂浓度,气泡尺寸分布和气体体积分数对CGA的流变进行量化。结果表明,CGA显示出强剪切稀疏行为,随着剪切速率的增加而降低表观粘度。还验证了CGA的表观粘度随着表面活性剂浓度提高而增加。最后,观察到当气体体积分数增加时表观粘度,屈服应力和CGA的平均气泡直径存在显着增加,尤其是高于临界体积分数(φ_c〜0.65)。此行为确认CGA能够形成包装结构。

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