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使用三维微粒跟踪测速法(µPTV)测量离子选择性界面处的电动诱导流体动力学。

Measurement of Electrokinetically induced hydrodynamics at Ion-selective interfaces using 3D Micro particle tracking velocimetry (µPTV).

作者信息

Stockmeier Felix, Schatz Michael, Habermann Malte, Linkhorst John, Mani Ali, Wessling Matthias

机构信息

Chemical Process Engineering AVT.CVT, RWTH Aachen University, Germany.

DWI - Leibniz-Institute for Interactive Materials, Germany.

出版信息

MethodsX. 2022 Aug 8;9:101814. doi: 10.1016/j.mex.2022.101814. eCollection 2022.

Abstract

Electrokinetic flow phenomena are ubiquitous in electrical systems for desalination, chemical conversion, or mixing at a micro-scale. However, the important features of resulting 3D flow fields are only accessible through cost-intensive numerical simulations. Experimental 2D recording of the chaotic three-dimensional velocity fields developing for example at currents exceeding the limiting current density does not capture the complex 3D structures present in such flow fields. Additionally, numerical 3D studies are limited to dimensions three orders of magnitude smaller as found in real applications and only short run times due to the enormous computational effort. To apply the theoretical knowledge in real-world systems and create the possibility for detailed parameter studies, we present the first experimental method for recording and quantifying the time-resolved velocity field in an electrochemical microfluidic cell in 3D with dimensions found in industrial applications. We utilize this method in a co-submitted paper to record the 3D velocity field of electroconvection at a cation-exchange membrane.•Cell design suitable for simultaneous electrochemical experiments with optical 3D velocity quantification•Method optimized for velocity reconstruction of membrane-to-membrane distances found in industrial cells•Highly adaptable cell design, for optical characterization of electrochemical systems.

摘要

电动流动现象在用于微尺度脱盐、化学转化或混合的电气系统中普遍存在。然而,所得三维流场的重要特征只能通过成本高昂的数值模拟来获取。例如,在超过极限电流密度的电流下产生的混沌三维速度场的实验二维记录无法捕捉此类流场中存在的复杂三维结构。此外,数值三维研究仅限于比实际应用中发现的尺寸小三个数量级的维度,并且由于计算量巨大,运行时间也很短。为了将理论知识应用于实际系统并为详细的参数研究创造可能性,我们提出了第一种实验方法,用于在具有工业应用中发现的尺寸的电化学微流体池中以三维方式记录和量化时间分辨速度场。我们在一篇共同提交的论文中利用这种方法记录阳离子交换膜处电对流的三维速度场。

•适用于同时进行电化学实验和光学三维速度量化的电池设计

•针对工业电池中膜到膜距离的速度重建进行优化的方法

•高度适应性强的电池设计,用于电化学系统的光学表征

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8be0/9421390/29985c2935ca/ga1.jpg

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