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Modeling of redox electrochemical MHD and three-dimensional CFD simulations of transient phenomena in microfluidic cells

机译:氧化还原电化学MHD建模和微流体细胞瞬态现象的三维CFD模拟

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摘要

Computational fluid dynamics simulations of redox electrochemical magneto-hydrodynamics (MHD) covering a large parameter space have been done to establish the effects of redox species concentration, electrode area, and magnetic field strength and orientation on the limiting current. Simulations of milli-electrode and microelectrode systems show similarities and differences between the two. Potential sweep and potential step simulations using time-accurate solution algorithms enabled accurate capture of transient phenomena which is crucial to the development of lab-on-a-chip flow control applications. Power-law correlations reported in previous experimental investigations of milli-electrodes are found to be less accurate for microelectrodes and nano-electrodes suggesting possible effects of multidimensional diffusion. Further, the orientation of the magnetic field in relation to the electrode surface has a strong influence on the flow field. Interesting and complex flow features are observed in the post-processed still images and animations. This work advances redox MHD simulations by incorporating important aspects in the models that were not considered in previous models. Our simulations based on these new models provide new insight into redox electrochemical MHD.
机译:已经完成了覆盖大参数空间的氧化还原电化学磁流体动力学(MHD)的计算流体动力学模拟,以建立氧化还原物质浓度,电极面积以及磁场强度和取向对极限电流的影响。毫电极和微电极系统的仿真显示了两者之间的相似之处和不同之处。使用时间精确的解决方案算法进行的潜在扫描和潜在步长仿真可准确捕获瞬态现象,这对于开发芯片实验室流量控制应用至关重要。以前在毫电极的实验研究中报告的幂律相关性被发现对于微电极和纳米电极的准确性较差,提示多维扩散的可能影响。此外,磁场相对于电极表面的取向对流场具有很大的影响。在后处理的静态图像和动画中观察到有趣且复杂的流特征。这项工作通过在模型中合并了以前模型中未考虑的重要方面,从而推进了氧化还原MHD仿真。我们基于这些新模型的仿真为氧化还原电化学MHD提供了新的见解。

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