Department of Mechanical Engineering, University of Bristol, University Walk, Bristol, BS8 1TR, UK.
Sci Rep. 2022 Aug 25;12(1):14549. doi: 10.1038/s41598-022-18554-5.
This paper describes the use of impulse control of an acoustic field to create complex and precise particle patterns and then dynamically manipulate them. We first demonstrate that the motion of a particle in an acoustic field depends on the applied impulse and three distinct regimes can be identified. The high impulse regime is the well established mode where particles travel to the force minima of an applied continuous acoustic field. In contrast acoustic field switching in the low impulse regime results in a force field experienced by the particle equal to the time weighted average of the constituent force fields. We demonstrate via simulation and experiment that operating in the low impulse regime facilitates an intuitive and modular route to forming complex patterns of particles. The intermediate impulse regime is shown to enable more localised manipulation of particles. In addition to patterning, we demonstrate a set of impulse control tools to clear away undesired particles to further increase the contrast of the pattern against background. We combine these tools to create high contrast patterns as well as moving and re-configuring them. These techniques have applications in areas such as tissue engineering where they will enable complex, high fidelity cell patterns.
本文介绍了利用声场的脉冲控制来创建复杂而精确的粒子图案,然后对其进行动态操作。我们首先证明了粒子在声场中的运动取决于所施加的脉冲,并且可以识别出三个不同的状态。在高脉冲状态下,粒子会移动到施加的连续声场的力最小点,这是一种成熟的模式。相比之下,在低脉冲状态下切换声场会导致粒子所经历的力等于组成力场的时间加权平均值。我们通过模拟和实验证明,在低脉冲状态下操作可以方便地形成复杂的粒子图案,这种方式直观且模块化。中间脉冲状态则可以实现对粒子的更局部化操作。除了图案化,我们还展示了一组脉冲控制工具,可以清除不需要的粒子,进一步提高图案相对于背景的对比度。我们结合这些工具来创建高对比度的图案,以及移动和重新配置它们。这些技术在组织工程等领域有应用,它们将能够实现复杂、高保真的细胞图案。