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Microvortices and recirculating flow generated by an oscillatory microplate for microfluidic applications

机译:微流体应用中振荡微板产生的微涡和循环流

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Circulatory flow structures can be useful in a microfluidic device but often are difficult to generate mechanically in microscale. This paper presents generation of such flow via an in-plane resonating microplate (100 × 100 × 1.2 μm~3) actuated by Lorentz law. Results show either one of two nonlinear time-mean flow structures is feasible for the finite plate: (1) two-dimensional (2D) small-scale, counter-rotating microvortices or (2) three-dimensional, large-scale, recirculating flow. Sharpness of microplate's edge is found to be the decisive factor for 2D microvortices to form. Both flow structures are robust and controllable. Potential applications include trapping and mixing of bioparticles in microfluidic devices.
机译:循环流动结构在微流体装置中可能有用,但通常很难以微尺度机械地产生。本文介绍了通过洛伦兹定律致动的平面内共振微孔板(100×100×1.2μm〜3)产生的此类流动。结果表明,两种非线性时均流动结构中的一种对于有限板是可行的:(1)二维(2D)小尺度反向旋转微旋涡或(2)三维大尺度再循环流。发现微孔板边缘的清晰度是形成二维微涡旋的决定性因素。两种流动结构均坚固且可控。潜在的应用包括在微流体装置中捕获和混合生物颗粒。

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