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Global network design for robust operation of microfluidic droplet generators with pressure-driven flow

机译:用于压力驱动流的微流体液滴发生器稳健运行的全局网络设计

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This study investigates the influence of both local generator design and global network architecture in improving the stability and operational performance of microfluidic droplet generators. We identify naturally occurring short-term and long-term oscillations that are related to changes in the flow of the two phases. Short-term oscillations are related to the creation of each droplet and are quantified by tracking droplet speed in the network. Long-term oscillations are caused by dynamic feedback associated with the periodic change in the hydrodynamic resistance of the network as droplets enter and exit the system. Our analysis identifies that these long-term oscillations are best quantified by measuring changes in droplet spacing rather than the conventional method of using droplet size. Furthermore, we find that these long-term oscillations have a periodicity that matches the residence time of droplets within the network. In combination with experiments, a simple compact model is developed to study these oscillations and guide the network design of droplet generators. As part of this analysis a set of design rules is developed to help improve overall generator performance using pressure-driven flow.
机译:这项研究调查了本地发生器设计和全局网络体系结构在提高微流体液滴发生器的稳定性和运行性能方面的影响。我们确定自然发生的短期和长期振荡,这与两相流的变化有关。短期振荡与每个液滴的产生有关,并通过跟踪网络中的液滴速度来量化。长期振荡是由动态反馈引起的,动态反馈与液滴进入和离开系统时网络流体动力阻力的周期性变化有关。我们的分析表明,通过测量液滴间距的变化,而不是使用液滴大小的常规方法,可以最好地量化这些长期振荡。此外,我们发现这些长期振荡具有与液滴在网络内停留时间匹配的周期性。结合实验,开发了一个简单的紧凑模型来研究这些振荡并指导液滴发生器的网络设计。作为此分析的一部分,开发了一组设计规则,以使用压力驱动的流量帮助提高发电机的整体性能。

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