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A compact acoustic spanner to rotate macroscopic objects

机译:紧凑的声学扳手可旋转宏观物体

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摘要

Waves can carry both linear and angular momentum. When the wave is transverse (e.g. light), the angular momentum can be characterised by the “spin” angular momentum associated with circular polarisation, and the “orbital” angular momentum (OAM) arising from the phase cross-section of the beam. When the wave is longitudinal (e.g. sound) there is no polarization and hence no spin angular momentum. However, a suitably phase-structured sound beam can still carry OAM. Observing the transfer of OAM from sound to a macroscopic object provides an excellent opportunity to study the exchange of energy between waves and matter. In this paper we show how to build a compact free-space acoustic spanner based on a 3D-printed sound-guiding structure and common electronic components. We first characterise the sound fields by measuring both phase and amplitude maps, and then show a video of our free-space acoustic spanner in action, in which macroscopic objects spin in a circular motion and change direction of rotation according to the handedness of the OAM acoustic field.
机译:波既可以携带线性动量,也可以携带角动量。当波是横向的(例如光)时,角动量的特征可以是与圆偏振相关的“自旋”角动量,以及由光束的相截面产生的“轨道”角动量(OAM)。当波是纵向的(例如声音)时,没有极化,因此没有自旋角动量。但是,适当的相结构声束仍然可以承载OAM。观察OAM从声音到宏观物体的转移,为研究波与物质之间的能量交换提供了极好的机会。在本文中,我们展示了如何基于3D打印的声音引导结构和常见的电子组件构建紧凑的自由空间声学扳手。我们首先通过测量相位图和幅度图来表征声场,然后显示正在运行的自由空间声扳手的视频,其中宏观物体以圆周运动旋转并根据OAM的惯性改变旋转方向声场。

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