IEEE Trans Ultrason Ferroelectr Freq Control. 2022 Apr;69(4):1572-1575. doi: 10.1109/TUFFC.2022.3149302. Epub 2022 Mar 30.
Stabilization of the position and orientation of non-spherical, sub-wavelength particles in mid-air is required for using acoustic levitation forces in applications such as automation of micro manufacturing processes, 3-D scanning, and inspection. Acoustic locking has previously been demonstrated by time-multiplexing of different acoustic traps at the same frequency. In this case, the magnitude of the acoustic levitation forces and the stabilizing torque are coupled by the ratio of the durations during which the different traps are applied and cannot be adjusted independently assuming operation at maximum power. This work presents a compact device that uses a method for independently adjusting the vertical trapping forces and the stabilizing torque using two different ultrasonic frequencies. A 40-kHz vertical standing wave is used to generate levitation forces that counteract the gravitational force. Additionally, a 25-kHz horizontal standing wave is used to generate a tunable stabilizing torque. Using this method, objects made from high-density materials across a wide range of geometries can be locked acoustically with increased stability compared with state-of-the-art methods. This is demonstrated by locking tin cuboids with a density of 7.3 g/cm and plastic cuboids with average side lengths between 0.9 and 3.5 mm. The experimental results demonstrate torsional spring constants of up to 50 nN · m/rad and an orientation stability of <7.5°.
为了在微制造过程自动化、3D 扫描和检查等应用中使用声悬浮力,需要稳定非球形、亚波长颗粒在空气中的位置和方向。以前通过在同一频率下时分复用不同的声阱来演示声锁定。在这种情况下,声悬浮力的大小和稳定扭矩通过不同陷阱施加的持续时间的比值耦合,并且不能在假设以最大功率运行的情况下独立调整。这项工作提出了一种紧凑的设备,该设备使用两种不同的超声波频率独立调整垂直捕获力和稳定扭矩的方法。使用 40 kHz 的垂直驻波产生与重力相抗衡的悬浮力。此外,使用 25 kHz 的水平驻波产生可调稳定扭矩。使用这种方法,可以使用比现有技术方法更高的稳定性来锁定具有广泛几何形状的高密度材料的物体。这通过锁定密度为 7.3 g/cm 的锡立方体和平均边长在 0.9 到 3.5 毫米之间的塑料立方体来证明。实验结果表明扭转弹簧常数高达 50 nN·m/rad,并且方向稳定性<7.5°。