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Towards plug and play filling of microfluidic devices by utilizing networks of capillary stop valves

机译:利用毛细管截止阀网络实现即插即用的微流体装置填充

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摘要

Robust bubble-free priming of complex microfluidic chips represents a critical, yet often unmet prerequisite to enable their practical and widespread application. Towards this end, the usage of a network of capillary stop valves as a generic design feature is proposed. Design principles, numerical simulations, and their application in the development of a microfluidic cell culture device are presented. This chip comprises eight parallel chambers for the assembly and cultivation of human hepatocytes and endothelial cells. The inlet channel divides into cell chambers, after which the flows are reunited to a single chip outlet. Dimensions and geometry of channels and cell chambers are designed to yield capillary burst pressures sequentially increasing towards the chip outlet. Thus, progress of liquid flow through the device is predefined by design and enclosure of air bubbles inside the microfluidic structures is efficiently avoided. Capillary stop valves were designed using numerical simulations. Devices were fabricated in cyclic olefin polymer. Pressure during filling was determined experimentally and is in good agreement with data obtained from simulation.
机译:复杂的微流控芯片的可靠无气泡灌注是实现其实际和广泛应用的关键但通常未得到满足的先决条件。为此,提出了使用毛细管截止阀网络作为通用设计特征。介绍了设计原理,数值模拟及其在微流控细胞培养装置开发中的应用。该芯片包括八个平行的小室,用于组装和培养人肝细胞和内皮细胞。入口通道分为多个小室,然后将流重新组合到单个芯片出口。通道和细胞室的尺寸和几何形状设计为产生朝着芯片出口逐渐增加的毛细破裂压力。因此,通过设计预定义了通过装置的液体流动的进程,并且有效地避免了气泡在微流体结构内部的封闭。毛细管截止阀是使用数值模拟设计的。器件是用环状烯烃聚合物制造的。填充过程中的压力是通过实验确定的,与从模拟获得的数据非常吻合。

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