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ANALYSIS OF A VIBRATING-BEAM-BASED MICROMIXER

机译:基于振动光束的微混合器分析

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The mixing of two or more streams in microscale devices is a slowly molecular diffusion process due to the unique laminar flows, and some 'turbulence' based mixing technologies which are effective in macroscales become hard to implement in such small dimensions. The chaotic advection based mixing, depending on the stretching and folding of interface, has been proved to be effective for low Reynolds numbers (Re) and is a very promising technology for micro mixing. We propose a new mixing concept based on a vibrating micro-beam in microfluidic channels to generate chaotic advection to achieve an efficient mixing. The simplicity of the proposed mixer design makes microfabrication process easy for practical applications. The feasibility of the concept is evaluated computationally and moving mesh technique (ALE) is utilized to trace the beam movement. The simulation shows that the mixing quality is determined by parameters such as flow velocities, amplitudes and frequencies of vibrating beam. The Reynolds number (Re) is less than 2.0, Pelect number (Pe) ranges from 5 to 1000, and Strohal number (St) 0.3 to 3.0. It was found that vortex type of flows were generated in microchannel due to the interaction between beam and channel wall. The mixing efficiency with this design is well improved comparing with the flows without beam vibration.
机译:在微尺度装置中的两个或更多个流的混合是由于独特的层流流动,并且在宏观上有效的基于“湍流”的混合技术是慢慢的分子扩散过程变得难以在这种小尺寸中实现。根据界面的拉伸和折叠,已经证明了混沌平流的混合,已被证明对低雷诺数(RE)有效,并且是微混合的非常有前途的技术。我们提出了一种基于微流体通道中振动微束的新混合概念,以产生混沌平流以实现有效的混合。所提出的混频器设计的简单性使微型制造过程易于实际应用。计算概念的可行性计算和移动网格技术(ALE)用于跟踪光束移动。模拟表明混合质量由诸如流速,振动梁的幅度和频率的参数确定。雷诺数(RE)小于2.0,PELECT数(PE)范围为5至1000,曲线数(ST)0.3至3.0。发现由于光束和通道壁之间的相互作用,在微通道中产生了涡流类型的流量。与没有光束振动的流量相比,这种设计的混合效率得到了很好的改进。

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