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Trajectory Modeling of Gas-Liquid Flow in Microchannels with Stochastic Differential Equation and Optical Measurement

机译:具有随机微分方程和光学测量的微通道气液流动轨迹建模

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摘要

The numbering-up of microchannel reactors definitely faces great challenge in uniformly distributing fluid flow in every channel, especially for multiphase systems. A model of stochastic differential equations (SDEs) is proposed based on the experimental data recorded by a long-term optical measurement to well quantify the stochastic trajectories of gas bubbles and liquid slugs in parallel microchannels interconnected with two dichotomic distributors. The expectation and variance of each subflow rate are derived explicitly from the SDEs associated with the Fokker-Planck equation and solved numerically. A bifurcation in the trajectory is found using the original model, then a modification on interactions of feedback and crosstalk is introduced, the evolutions of subflow rates calculated by the modified model match well with experimental results. The established methodology is helpful for characterizing the flow uniformity and numbering-up the microchannel reactors of multiphase system. (c) 2015 American Institute of Chemical Engineers.
机译:在将流体流均匀地分配到每个通道中时,微通道反应器的编号无疑面临着巨大的挑战,特别是对于多相系统而言。基于长期光学测量记录的实验数据,提出了一种随机微分方程(SDEs)模型,以很好地量化与两个二分分布器互连的平行微通道中气泡和液团的随机轨迹。从与Fokker-Planck方程关联的SDE显式导出每个子流量的期望和方差,并对其进行数值求解。使用原始模型在轨迹上发现了分叉,然后对反馈和串扰的相互作用进行了修改,修改后的模型计算出的子流量的变化与实验结果非常吻合。所建立的方法学有助于表征流动均匀性并为多相系统的微通道反应器编号。 (c)2015美国化学工程师学会。

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