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Effect of gas and liquid flowrates on the size distribution of barium sulfate nanoparticles precipitated in a two phase flow capillary microreactor

机译:气体和液体流速对两相流毛细管微反应器中沉淀的硫酸钡纳米颗粒尺寸分布的影响

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Production of fine particles by precipitation is a relatively simple process but the control of product particle size distribution can be difficult. In recent years microreactors are being seen as effective devices to achieve this aim and in that the two-phase flow microreactor is a promising alternative. In the present work, fine (nano/micro) particles of barium sulfate have been produced by reacting barium chloride and sodium sulfate solutions in a 30 cm long and 830 μm inner diameter glass capillary microreactor. The T-inlet section has all three limbs 15 mm long and 1 mm in diameter. Particle sizes produced ranged from about 200 nm to 1100 nm, with mean sizes between 300 nm and 670 nm. Results show that an increase in the flowrate of any of the three streams, the two reactant liquid streams and one inert gas stream, led to a decrease in the mean particle size of the precipitated barium sulfate product. Increased mixing and higher Ba~(2+) ion concentrations in the small microreactor (liquid slugs) are believed to shift rates in favour of nucleation as compared to agglomeration, yielding smaller particles in the product. Size variation results show a trend similar to that reported in earlier researches on BaSO4 precipitation in single (liquid) phase microreactors but the actual sizes obtained in the present work are bigger. Other geometries and flow conditions may yield smaller particles, hence the need for further investigation of the two-phase flow system.
机译:通过沉淀生产细颗粒是相对简单的过程,但是难以控制产品粒度分布。近年来,微反应器被视为实现这一目标的有效装置,因为两相流微反应器是一种有前途的替代方案。在本工作中,通过使氯化钡和硫酸钠溶液在30厘米长,内径为830μm的玻璃毛细管微反应器中反应,制得了细(纳米/微米)的硫酸钡颗粒。 T形入口部分的三个肢长均为15毫米,直径为1毫米。产生的粒度为约200nm至1100nm,平均粒度为300nm至670nm。结果表明,三种物流中的任何一种,两种反应物液体物流和一种惰性气体物流中任何一种的流速增加,都会导致沉淀出的硫酸钡产物的平均粒径减小。与团聚相比,在小型微反应器(液体团块)中增加的混合和更高的Ba〜(2+)离子浓度被认为可以改变速率,从而有利于成核,从而在产品中产生更小的颗粒。尺寸变化结果显示出与早期在单(液相)微反应器中BaSO4沉淀研究中报道的趋势相似的趋势,但是在当前工作中获得的实际尺寸更大。其他几何形状和流动条件可能会产生较小的颗粒,因此需要进一步研究两相流动系统。

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