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Foaming mechanisms in surfactant free particle suspensions

机译:无表面活性剂的颗粒悬浮液中的起泡机理

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Physical mechanisms for foam formation in the presence of colloidal particles are poorly understood. This study is aimed at enhancing the basic understanding of the mechanisms that produce foaming in a three-phase system, containing solid, liquid, and gas, and identifying key parameters that aggravate foaming in the absence of surface-active agents. The foaming ability of a system ("foaminess) was investigated by aerating a suspension of nanosized hydrophilic silica particles. We observed that the foaminess was directly proportional to particle concentration and inversely proportional to particle size. However, even a small degree of bidispersity in particle size drastically reduced foaminess. To explain these observations, the drainage of a single foam lamella containing nanosized particles was studied using a novel capillary force balance apparatus, which incorporates the microinterferometric technique. The single foam lamella thins in a stepwise manner, as the colloidal particles self-organize into a layered structure between the gas bubbles. This layer provides a barrier against coalescence of bubbles, thereby stabilizing the foam lamella. The number of stepwise film thickness transitions increased with particle concentration and decreased with the increase in the particle size, consistent with the results from foaming experiments. Particle bimodal distribution greatly decreases the foam-lamella stability, consistent with the theoretical prediction. [References: 31]
机译:在胶体颗粒存在下形成泡沫的物理机理了解甚少。这项研究旨在增进对三相系统(包含固体,液体和气体)中产生泡沫的机理的基本了解,并确定在没有表面活性剂的情况下加重泡沫的关键参数。通过对纳米级亲水性二氧化硅颗粒的悬浮液充气,研究了系统(“泡沫胺”)的起泡能力,我们观察到,起泡性与颗粒浓度成正比,与颗粒尺寸成反比,但是,即使在颗粒中有很小程度的双分散性为了彻底解释这些现象,我们使用新型毛细管力平衡装置研究了含有纳米级颗粒的单个泡沫薄片的排水情况,该装置采用了微干涉技术,该单个泡沫薄片以胶体颗粒的形式逐步稀释。自组织成气泡之间的分层结构,该层提供了防止气泡聚结的屏障,从而稳定了泡沫片层;随着颗粒浓度的增加,逐步形成的膜厚转变数量逐渐增加,而随着颗粒尺寸的增加逐渐减少发泡实验的结果ents。颗粒双峰分布大大降低了泡沫-薄片的稳定性,与理论预测一致。 [参考:31]

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