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Nonlinear systems synchronization for modeling two-phase microfluidics flows

机译:两相微流体流动的非线性系统同步

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摘要

Abstract The aim of this work is to identify a class of models that can represent the two-phase microfluidic flow in different experimental conditions. The identification procedure adopted is based on the nonlinear systems synchronization theory. The experimental time series were assumed as the asymptotic behavior of a generic state variable of an unknown Master system, and this information was used to drive a second Slave system, with a known model and undefined parameters. To reach the convergence between the time evolutions of the two systems, so the flow identification, an error was evaluated and optimized by tuning the parameters of the Slave system, through genetic algorithm. The Chua’s oscillator has been chosen as a Slave model, and an optimal parameters set of Chua’s system was identified for each of the 18 experiments. As proof of concept on approach validity, the changes in the parameters set in the different experimental conditions were discussed taking into account the results of the nonlinear time series analysis. The results confirm the possibility with a single model to identify a variety of flow regimes generated in two-phase microfluidic processes, independently of how the processes have been generated, no directed relations with the input flow rate used are in the model.
机译:摘要这项工作的目的是识别一类可以代表不同实验条件下的两相微流体流的模型。采用的识别程序是基于非线性系统同步理论。实验时间序列被认为是未知主系统的通用状态变量的渐近行为,并且该信息用于驱动第二从系统,具有已知模型和未定义的参数。为了通过遗传算法调整从系统的参数来评估和优化的流程识别,通过遗传算法来评估和优化之间的收敛。 CHUA的振荡器已被选为从属模型,并为18个实验中的每一个确定了一组CHUA系统集合。作为方法有效性的概念证明,考虑了非线性时间序列分析的结果,讨论了在不同实验条件下设置的参数的变化。结果证实了单一模型的可能性,以识别在两相微流体过程中产生的各种流动制度,独立于如何生成过程,没有针对所使用的输入流速的定向关系。

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