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On the Ejection of Filaments of Polymer Solutions Triggered by a Micrometer-Scale Mixing Mechanism

机译:在微米级混合机构触发的聚合物溶液的射精上

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摘要

Polymer filaments constitute precursor materials of so-called fiber mats, ubiquitous structures across cutting-edge technological fields. Thus, approaches that contribute to large-scale production of fibers are desired from an industrial perspective. Here, we use a robust liquid atomization device operated at relatively high flow rates, ~20 mL/min, as facilitating technology for production of multiple polymer filaments. The method relies on a turbulent, energetically efficient micro-mixing mechanism taking place in the interior of the device. The micro-mixing is triggered by radial implosion of a gas current into a liquid feeding tube, thus resulting in breakup of the liquid surface. We used poly(ethylene oxide) solutions of varying concentrations as test liquids to study their fragmentation and ejection dynamics employing ultra-high speed imaging equipment. Taking an energy cascade approach, a scaling law for filament diameter was proposed based on gas pressure, liquid flow rate and viscosity. We find that a filament dimensionless diameter, Df*, scales as a non-dimensional liquid flow rate Q* to the 1/5. The study aims to elucidate the underlying physics of liquid ejection for further applications in material production.
机译:聚合物长丝构成所谓的纤维垫的前体材料,横向尖端技术领域的无处不在的结构。因此,从工业角度来看,需要有助于纤维的大规模产生的方法。这里,我们使用以相对高的流速,〜20mL / min操作的鲁棒液体雾化装置,作为促进用于生产多种聚合物长丝的技术。该方法依赖于在装置内部进行的湍流,能量有效的微混合机构。通过将气流的径向内枕进入液体进给管,使微混合引发,从而导致液体表面的分解。我们使用不同浓度的聚(环氧乙烷)溶液作为测试液,以研究采用超高速成像设备的碎片和喷射动力学。采用能量级联方法,提出了一种基于气体压力,液体流速和粘度的灯丝直径的缩放规律。我们发现灯丝无量纲直径,DF *,尺度为非尺寸液体流量Q *至1/5。该研究旨在阐明液体喷射的潜在物理学,以进行材料生产的进一步应用。

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