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A Facile and Flexible Method for On-Demand Directional Speed Tunability in the Miniaturised Lab-on-a-Disc

机译:小型化的光盘实验室中按需定向速度可调的简便灵活方法

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摘要

The Miniaturised Lab-on-a-Disc (miniLOAD) platform, which utilises surface acoustic waves (SAWs) to drive the rotation of thin millimeter-scale discs on which microchannels can be fabricated and hence microfluidic operations can be performed, offers the possibility of miniaturising its larger counterpart, the Lab-on-a-CD, for true portability in point-of-care applications. A significant limitation of the original miniLOAD concept, however, is that it does not allow for flexible control over the disc rotation direction and speed without manual adjustment of the disc’s position, or the use of multiple devices to alter the SAW frequency. In this work, we demonstrate the possibility of achieving such control with the use of tapered interdigitated transducers to confine a SAW beam such that the localised acoustic streaming it generates imparts a force, through hydrodynamic shear, at a specific location on the disc. Varying the torque that arises as a consequence by altering the input frequency to the transducers then allows the rotational velocity and direction of the disc to be controlled with ease. We derive a simple predictive model to illustrate the principle by which this occurs, which we find agrees well with the experimental measurements.
机译:小型化的光盘实验室(miniLOAD)平台利用表面声波(SAW)来驱动可在其上制造微通道并因此执行微流体操作的毫米级薄盘的旋转,从而提供了以下可能性:将大型CD实验室小型化,以实现即时医疗应用的真正可移植性。但是,原始miniLOAD概念的一个重大限制是,它无法在没有手动调整光盘位置或使用多个设备来更改SAW频率的情况下灵活地控制光盘的旋转方向和速度。在这项工作中,我们证明了通过使用锥形叉指式换能器来限制SAW束,从而使其产生的局部声流通过流体动力剪切力,在圆盘上的特定位置上实现这种控制的可能性。通过改变换能器的输入频率来改变由此产生的扭矩,然后可以容易地控制盘的旋转速度和方向。我们导出了一个简单的预测模型来说明这种情况发生的原理,我们发现该模型与实验测量结果非常吻合。

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