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Reliability-Aware Synthesis With Dynamic Device Mapping and Fluid Routing for Flow-Based Microfluidic Biochips

机译:基于流量的微流生物芯片具有动态设备映射和流体路由的可靠性感知综合

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In flow-based biochips, peristaltic pumps consisting of valves are essential to generate circulation flow in a mixer. When a peristaltic pump is activated, the related valves for peristalsis are required to be actuated for many times. However, the roles of valves in traditional chips are fixed, and therefore the valves for peristalsis can wear out much faster than the valves for guiding fluid transportation. This could lead to a reduced lifetime of the chip, because the whole chip function can be affected when just a few or even only a single valve wears out. In this paper, we propose a valve-centered architecture with virtual valves, based on which we introduce a valve-role-changing concept to balance the valve actuations. By switching a valve into different roles, microfluidic components such as mixers, storages, and flow channels can be formed dynamically during the assay process, which enables us to balance the utilization of valves, and synthesize designs that support various kinds of operations. Compared with our preliminary work, we further decrease the largest number of valve actuation as well as the number of valves by the revised dynamic device mapping and fluid path routing. For dynamic device mapping, we introduce a virtual-boundary concept to generate devices at better places while connections between devices are still guaranteed. For fluid path routing, we accurately model valve actuation resulting from our valve-actuation-aware routing, and revise the results by rip-up and reroute. In addition to performance, we improve the reliability of our method by assuring fluid paths from devices to chip boundaries. Experiments show that the new method can be eight times better than the traditional method, and outperforms our preliminary work for large cases even with fewer valves.
机译:在基于流动的生物芯片中,由阀门组成的蠕动泵对于在混合器中产生循环流至关重要。激活蠕动泵时,需要多次操纵相关的蠕动阀。但是,传统芯片中阀的作用是固定的,因此蠕动阀的磨损要比引导流体输送的阀快得多。这可能会导致芯片寿命缩短,因为当只有几个甚至只有一个阀磨损时,整个芯片功能都会受到影响。在本文中,我们提出了一种以虚拟阀为中心的以阀为中心的架构,在此基础上,我们引入了阀角色转换概念来平衡阀的致动。通过将阀切换为不同的角色,可以在化验过程中动态形成微流体组件,例如混合器,存储器和流道,这使我们能够平衡阀的利用率,并综合支持各种操作的设计。与我们的初步工作相比,通过修订的动态设备映射和流体路径路由,我们进一步减少了最大的阀门致动次数以及阀门数量。对于动态设备映射,我们引入了虚拟边界概念,可以在更好的位置生成设备,同时仍然可以保证设备之间的连接。对于流体路径路由,我们准确地模拟了我们对阀门促动的路由产生的阀门促动,并通过翻录和重新路由修改了结果。除了性能之外,我们还通过确保从器件到芯片边界的流体路径来提高方法的可靠性。实验表明,新方法可以比传统方法好八倍,并且即使在阀门数量较少的情况下,也能胜过我们在大型情况下的初步工作。

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