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Actively homogenizing fluid distribution and slug length of liquid-liquid segmented flow in parallelized microchannels

机译:并联微通道中的液 - 液分段流动的主动均化流体分布和裂缝长度

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摘要

Liquid-liquid segmented flow offers the unique characteristics of high heat and mass transfer combined with a narrow residence time distribution and thus shows great potential in process intensification of biphasic applications. Capacity increase of this technology can only be achieved by numbering-up, if scale-related advantages are to be preserved. This implies homogeneous residence times and volume flows in all parallel channels. Conventionally this is achieved by static fluid distribution concepts with high pressure drops. This contribution develops a microfluidic valve based on temperature-controlled viscosity adjustments. It can be used to actively compensate for manufacturing tolerances in parallelized micro reactors and thus requires a lower pressure drop than static distribution concepts to achieve a homogeneous fluid distribution. The distributor concept is combined with sensors and actuators for flow patterns and an automated parallelization concept for homogenizing flow patterns of liquid-liquid slug flows in micro channels is presented.
机译:液液分段流量提供高热量和质量传递的独特特性,与狭窄的停留时间分布相结合,从而显示出双相应用的过程强化的巨大潜力。如果要保留比较相关的优势,则只能通过编号来实现该技术的容量增加。这意味着均匀的停留时间和体积流动在所有并行通道中。传统上,这是通过具有高压下降的静态流体分布概念来实现。该贡献基于温度控制的粘度调节,产生微流体瓣膜。它可用于主动补偿并联微反应器中的制造公差,因此需要比静态分布概念的较低压降,以实现均匀的流体分布。分配器概念与用于流动模式的传感器和致动器组合,并且呈现用于微通道中的液体液体块流动的均质流动模式的自动化并行化概念。

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