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On-chip automation of sequential flow switching with serially connectable fluidic monostable multivibrator

机译:带有串联可连接流体单稳态多谐振荡器的顺序流量切换的片上自动化

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We propose a fluidic monostable multivibrator (fMMV) circuit, which is a new flow-switching mechanism in microfluidic chips. Flow control using parallel fMMV circuits does not require an external controller; this is a distinct advantage over various conventional micro-flow control methods. The fMMV circuit mainly consists of an inverter and an RC circuit. Each of the parts uses a microchannel as a resistor, a membrane chamber as a capacitor and a membrane valve as a transistor. The inverter acts as a trigger which opens the membrane valve and the RC circuit delays the closing of the valve, so that flow switching can occur over a time interval. A serial fMMV circuit can switch flows in multiple channels and regulate flowrates with pre-defined durations. By modifying the resistances in fMMV circuits, the flow rates and duration of each phase could be adjusted. For a proof of concept demonstration, we performed experiments using 3 parallel fMMV and 4 parallel fMMV circuit systems and these experiments show the applicability of fMMV circuit to various biochemical processes.
机译:我们提出了一种流体单稳态多谐振荡器(fMMV)电路,它是微流体芯片中的一种新的流量切换机制。使用并行fMMV电路的流量控制不需要外部控制器;与各种常规的微流控制方法相比,这是一个明显的优势。 fMMV电路主要由逆变器和RC电路组成。每个部分都使用微通道作为电阻器,使用膜腔作为电容器,使用膜阀作为晶体管。逆变器充当触发器,可打开隔膜阀,而RC电路会延迟阀的关闭,从而可以在一定时间间隔内进行流量切换。串行fMMV电路可以切换多个通道中的流量,并以预定义的持续时间调节流量。通过修改fMMV电路中的电阻,可以调整每个相的流速和持续时间。为了进行概念验证,我们使用3个并联的fMMV和4个并联的fMMV电路系统进行了实验,这些实验表明了fMMV电路在各种生化过程中的适用性。

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