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Toward microfluidic design automation: a new system simulation toolkit for the in silico evaluation of droplet-based lab-on-a-chip systems

机译:迈向微流控设计自动化:一种新的系统仿真工具套件,用于基于液滴的芯片实验室系统的计算机评估

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Miniaturization of biological and chemical assays in lab-on-a-chip systems is a highly topical field of research. The pressure-driven droplet-based microfluidic platform is a promising way to realize these miniaturized systems by expanding the capability of assays with special features that are unreached by traditional workflows. Full custom centric design of droplet-based microfluidic lab-on-a-chip systems leads to a high system integration level and design complexity. In our work, we report on a software toolkit based on the Kirchhoff laws for modeling droplet traffic and processing for even complex microfluidic networks. Experimental validation of the simulation results was performed utilizing directional droplet transport switching in a circular channel element. This structure can be employed as a benchmark system for the experimental validation of the obtained simulation results. As a result of these experiments, our design and simulation toolkit meet the requirements for a versatile and low-risk development of custom lab-on-a-chip devices. Together with our conceptual model of microfluidic networks, most of the development problems arising with complex lab-on-a-chip applications can be solved. Due to the high computational speed, the algorithm allows an interactive in silico evaluation of even complex sample-processing workflows in droplet-based microfluidic devices prior any preparation of prototypes. Summarizing the developed toolkit may become the foundation for the future development of software tools for a microfluidic design automation. As a result of this new way of simulation-based application-driven development, the advantages of lab-on-a-chip will be accessible for more people through the easy, versatile and efficient transformation from complex laboratory workflows to compact and easy to use lab-on-a-chip applications.
机译:芯片实验室系统中生物和化学分析的小型化是研究的高度主题。压力驱动的基于液滴的微流体平台是一种有前途的方式,可以通过扩展具有传统工作流程无法实现的特殊功能的分析功能来实现这些小型化系统。基于液滴的微流体芯片实验室系统的完全自定义中心设计导致较高的系统集成度和设计复杂性。在我们的工作中,我们报告了一种基于基尔霍夫定律的软件工具包,用于为复杂的微流体网络建模液滴流量和处理。仿真结果的实验​​验证是利用圆形通道元件中的定向液滴传输开关进行的。该结构可以用作对获得的仿真结果进行实验验证的基准系统。这些实验的结果是,我们的设计和仿真工具包满足了定制化芯片实验室设备的通用性和低风险开发的要求。与我们的微流体网络概念模型一起,可以解决由于复杂的单芯片实验室应用而引起的大多数开发问题。由于计算速度高,该算法允许在进行任何原型制备之前,对基于液滴的微流控设备中甚至复杂的样品处理工作流程进行交互式计算机模拟评估。总结已开发的工具包可能成为将来微流体设计自动化软件工具开发的基础。通过这种新的基于仿真的应用驱动开发方式,通过将复杂的实验室工作流程轻松,通用和高效地转换为紧凑而易于使用的方法,片上实验室的优势将可供更多人使用芯片实验室应用。

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