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Multiple independent autonomous hydraulic oscillators driven by a common gravity head

机译:多个独立的自主液压振荡器,由共同的重力头驱动

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Self-switching microfluidic circuits that are able to perform biochemical experiments in a parallel and autonomous manner, similar to instruction-embedded electronics, are rarely implemented. Here, we present design principles and demonstrations for gravity-driven, integrated, microfluidic pulsatile flow circuits. With a common gravity head as the only driving force, these fluidic oscillator arrays realize a wide range of periods (0.4 s-2 h) and flow rates (0.10-63 mu l min(-1)) with completely independent timing between the multiple oscillator sub-circuits connected in parallel. As a model application, we perform systematic, parallel analysis of endothelial cell elongation response to different fluidic shearing patterns generated by the autonomous microfluidic pulsed flow generation system.
机译:类似于嵌入式电子设备,能够以并行和自主方式执行生化实验的自切换微流电路很少得到实现。在这里,我们介绍重力驱动的集成微流体脉动流回路的设计原理和演示。这些流体振荡器阵列以共同的重力头作为唯一驱动力,可实现宽范围的周期(0.4 s-2 h)和流速(0.10-63μlmin(-1)),并且多个脉冲之间的计时完全独立振荡器子电路并联连接。作为模型应用,我们对自主微流脉冲流生成系统生成的不同流体剪切模式的内皮细胞伸长响应进行系统,并行的分析。

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