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Effect of Surface Grooves on the Characteristics of Noncontact Transportation Using Near-Field Acoustic Levitation

机译:表面槽对近场声悬浮近场隔离运输特性的影响

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摘要

Near-field acoustic levitation is a novel noncontact handling method. However, low load-carrying capacity and low transportation speed limit its application. This study proposes a novel method in which bar-type grooves are machined on the plate surface to increase load-carrying capacity and transportation speed. An experimental rig with a flexural rail vibrated by piezoelectric transducers is developed to transport the rigid plate and measure the levitation height and transportation speed. The flexural vibration mode of the rail and the dynamic position of the rigid plate are coupled with groove characteristics to determine the gas film thickness between the rail and plate. The Reynolds equation is linearized by using Green's formula and then solved by using an eight-node discrete grid finite difference method. The effects of groove direction, depth, number, width, and length on the load-carrying capacity and transportation speed are also discussed. Numerical results are consistent with the experiment results. The load-carrying capacity and transportation capability can be significantly improved with groove length direction vertical to the rail wave transportation direction. Predicted results show that optimum groove depth, number, width, and length can be used to increase load-carrying capacity and transportation capability.
机译:近场声学悬浮是一种新型非接触式处理方法。然而,低负荷容量和低运输速度限制其应用。本研究提出了一种新的方法,其中杆式槽在板表面上加工,以增加承载能力和运输速度。具有由压电换能器振动的弯曲轨道的实验装置,以运输刚性板并测量悬浮高度和运输速度。轨道的弯曲振动模式和刚性板的动态位置与凹槽特性联接以确定导轨和板之间的气体膜厚度。通过使用绿色的公式,通过使用八节点离散网格有限差分方法来线性化雷诺等式。还讨论了沟槽方向,深度,数量,宽度和长度对承载能力和运输速度的影响。数值结果与实验结果一致。承载能力和输送能力可以通过垂直于轨道波传送方向而显着改善。预测结果表明,最佳的凹槽深度,数量,宽度和长度可用于增加承载能力和运输能力。

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