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Scale-up on mixing in rotating microchannel under subcritical and supercritical operating modes

机译:在亚临界和超临界工作模式下旋转微通道中混合的放大

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摘要

The factors affecting flow and mixing of two different fluids in a rotating radial microchannel are investigated using numerical simulation, experiments, analytical approach and dimensional analysis. As has been verified by both numerical simulation and experiments, depending on the channel width-to-height aspect ratio there are two distinctly different modes of operation, subcritical and supercritical modes, that yield identical mixing quality with the supercritical mode providing higher volumetric throughput. Four dimensionless groups (namely, rotational Reynolds number, channel length-to-height, channel width-to-height, and channel initial radial-location-to-height) are found to be important for correlating the quality of mixing of fluids in the rotating microchannel operating in either mode in form of scale-up laws. The latter, which fill the badly needed missing knowledge gap, are useful for design, operation, and optimization of rotating microchannels for fluid mixing.
机译:使用数值模拟,实验,分析方法和尺寸分析,研究了影响旋转径向微通道中两种不同流体的流动和混合的因素。正如通过数值模拟和实验所证实的那样,根据通道的宽高比,有两种截然不同的运行模式,亚临界和超临界模式,它们产生相同的混合质量,而超临界模式则提供了更高的体积通量。发现四个无因次组(即,旋转雷诺数,通道长度-高度,通道宽度-高度和通道初始径向位置-高度)对于关联流体在管道中的混合质量非常重要。以放大定律的形式在任一模式下运行的旋转微通道。后者填补了急需的缺少知识的空白,对于设计,操作和优化用于流体混合的旋转微通道非常有用。

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