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External liquid solid mass transfer for solid particles transported in a milli-channel within a gas-liquid segmented flow

机译:在气液分段流中在毫通道中运输的固体颗粒的外部液体固体传质

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摘要

This article focuses on the measurement of external liquid-solid mass transfer coefficient for micro particles (d(p) = 40-200 mu m) transported in a gas-liquid Taylor flow. The particles are kept in motion due to the secondary vortices present in the liquid slugs of these segmented flows. Acidic ion exchange particles and dilute sodium hydroxide solutions are used to perform ion exchange and neutralisation under external mass transfer limitations. Concentration profiles are monitored along the reactor with 4 conductivity cells which provides accurate mass transfer coefficients for each experiment. Two phase velocity (2.5-28 cm/s), mean particle size (100-160 mu m), solid loading (5-18 g/L), reactor orientation (vertical down flow-horizontal) and liquid phase nature (Sc = 790-2300) were investigated. In that experimental window, it was found that the solid charge and the flow direction have a small influence on the L-S mass transfer even though the direction of the flow influences particle distribution in the liquid slug. Similar mass transfer coefficients and dependencies on the two phase velocities and liquid properties were found. Increasing the two-phase velocity leads first to increase the mass transfer coefficient. Then at highest velocities (u(TP) > 20 cm/s), a much lower impact is observed and the mass transfer coefficient tends to stabilize. A first correlation form for the L-S Sherwood number in "slurry Taylor" flow is proposed for both flow orientations. These findings are used in a second part to illustrate the high potentialities of this advanced structured flow in comparison with other conventional reactors using suspended particles like stirred tank and bubble column reactors. The G-L-S "slurry Taylor" offers compelling advantages combining excellent overall external mass transfer (G-L and L-S) and almost ideal plug flow behaviour for the three phases and very good heat transfer capacities. (C) 2015 Elsevier B.V. All rights reserved.
机译:本文着重于测量在气-液泰勒流中传输的微粒(d(p)= 40-200μm)的外部液固传质系数。由于存在于这些分段流的液体塞中的次级涡旋,粒子保持运动。在外部传质限制下,使用酸性离子交换颗粒和稀氢氧化钠溶液进行离子交换和中和。沿着带有4个电导池的反应器监控浓度曲线,这为每个实验提供了准确的传质系数。两相速度(2.5-28 cm / s),平均粒径(100-160μm),固体负载(5-18 g / L),反应器方向(垂直向下流动-水平)和液相性质(Sc = 790-2300)。在该实验窗口中,发现固料和流动方向对L-S传质的影响很小,即使流动方向会影响液塞中的颗粒分布。发现相似的传质系数以及对两相速度和液体性质的依赖性。增加两相速度首先导致传质系数增加。然后在最高速度(u(TP)> 20 cm / s)时,观察到的冲击要小得多,并且传质系数趋于稳定。针对两种流向,提出了“浆液泰勒”流中L-S舍伍德数的第一个相关形式。这些发现将在第二部分中用于说明,与其他使用悬浮颗粒的常规反应器(如搅拌釜和鼓泡塔反应器)相比,这种先进的结构化流具有很高的潜力。 G-L-S“泰勒浆液”具有引人注目的优势,它结合了出色的整体外部传质(G-L和L-S)以及几乎理想的三相活塞流特性和非常好的传热能力。 (C)2015 Elsevier B.V.保留所有权利。

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