Laboratory for Micro Systems, Department of Mechanical and Aerospace Engineering, Monash University, Clayton, Victoria 3800, Australia.
Lab Chip. 2019 Sep 10;19(18):3032-3044. doi: 10.1039/c9lc00369j.
Acoustic actuation is widely used in microfluidic systems as a method of controlling the behaviour of suspended matter. When acoustic waves impinge on particles, a radiation force is exerted which can cause migration over multiple acoustic time periods; in addition the scattering of the wave by the particle will affect the behaviour of nearby particles. This interparticle effect, or Bjerknes force, tends to attract particles together. Here, instead of manipulating a dilute sample of particles, we examine the acoustic excitation of a packed bed. We fill a microfluidic channel with microparticles, such that they form a closely packed structure and then excite them at the particle's resonant frequency. In this scenario, each particle acts as a source of scattered waves and we show that these waves are highly effective at attracting nanoparticles onto the surface of the microparticles, and nanoparticle collection characterises the performance of this mechanically activated packed bed.
声激励在微流控系统中被广泛应用,作为控制悬浮物质行为的一种方法。当声波冲击颗粒时,会产生辐射力,这种力可以导致颗粒在多个声波周期内发生迁移;此外,颗粒对波的散射会影响附近颗粒的行为。这种颗粒间相互作用,或 Bjerknes 力,倾向于使颗粒聚集在一起。在这里,我们不是操纵稀释的颗粒样本,而是研究填充床的声激励。我们用微颗粒填充微流道,使得它们形成一个紧密堆积的结构,然后在颗粒的共振频率下激发它们。在这种情况下,每个颗粒都充当散射波的源,我们表明这些波非常有效地将纳米颗粒吸引到微颗粒的表面上,纳米颗粒的收集特性描述了这种机械激活填充床的性能。