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Film thickness measurements in liquid-liquid slug flow regimes

机译:液-液段塞流态下的膜厚测量

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At present there is significant interest in the development of small scale medical diagnostic equipment. These devices offer faster processing times and require smaller sample volumes than equivalent macro scale systems. Although significant attention has been focused upon their outputs, little attention has been devoted to the detailed fluid mechanics that govern the flow mechanisms within these devices. Conventionally, the samples in these small scale devices are segmented into distinct discrete droplets or slugs which are suspended in an organic carrier phase. Separating these slugs from the channel wall is a very thin film of the organic carrier phase. The magnitude of this film is the focus of the present study and the effects of sample slug length and carrier phase fluidic properties on the film are examined over a range of Capillary numbers. A non-intrusive optical technique was used to capture images of the flow from which the magnitude of the film was determined. The experimental results show that the film is not constant along the length of the slug; however above a threshold value for slug length, a region of constant film thickness exists. When compared with existing correlations in the literature, the experimental data showed reasonable agreement with the Bretherton model when the Capillary number was calculated based on the mean two phase flow velocity. However, significant differences were observed when the Capillary number was redefined to account for the mean velocity at the liquid interface, i.e., the mean slug velocity. Analysis of the experimental data revealed that it fell into two distinct flow regimes; a visco-capillary regime and a visco-inertial regime. A modified Taylor expression is presented to estimate the magnitude of the film for flows in the visco-capillary regime while a new model is put forward, based on Capillary and Weber numbers, for flows in the visco-inertial regime. OveralL., this study provides some novel insights into parameters, such as aqueous slug length and carrier phase fluidic properties, that affect the thickness of the film in liquid-liquid slug flow regimes.
机译:目前,对小型医疗诊断设备的开发非常感兴趣。与等效的宏观系统相比,这些设备提供了更快的处理时间,并且需要的样本量更少。尽管已经将大量注意力集中在它们的输出上,但是很少有注意力集中在控制这些设备中的流动机制的详细流体力学上。通常,将这些小型装置中的样品分成不同的离散液滴或小块,将其悬浮在有机载体相中。将这些团块与通道壁分开的是非常薄的有机载体相薄膜。该膜的大小是本研究的重点,并且在一定的毛细管数范围内检查了样品塞长度和载流相流体性质对膜的影响。使用非侵入式光学技术来捕获流动图像,从而确定薄膜的大小。实验结果表明,薄膜在弹头的长度方向上不是恒定的。但是,在弹头长度的阈值以上,存在膜厚恒定的区域。当与文献中已有的相关性进行比较时,当根据平均两相流速计算毛细管数时,实验数据与布雷瑟顿模型合理吻合。然而,当重新定义毛细管数以说明液体界面的平均速度,即平均团速度时,观察到显着差异。对实验数据的分析表明,它分为两种不同的流动状态;黏性毛细血管状态和黏惯性状态。提出了一种改进的泰勒表达式,以估计膜在粘膜-毛细管状态下的流动幅度,同时基于毛细和韦伯数,提出了一种新的模型,用于粘膜-惰性状态下的流动。总的来说,这项研究提供了对参数的一些新见解,例如在液-液塞流方式中影响膜厚度的参数,如水塞长度和载体相流体性质。

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