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The origin of ultrasound-induced friction reduction in microscopic mechanical contacts

机译:超声引起的微观机械接触中的摩擦减小的起源

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We present a study of the origin of ultrasound-induced friction reduction in microscopic mechanical contacts. The effect of friction reduction caused by Rayleigh-type surface acoustic waves (SAWs) is demonstrated for propagating and two-dimensional, standing wave fields using lateral force microscopy (LFM). It is shown that with increasing wave amplitude, friction is completely suppressed. To detect and distinguish between the effect of lateral and vertical surface oscillation components on the cantilever movement, we employed multimode scanning acoustic force microscopy (SAFM). We found that the friction reduction effect is only due to the vertical oscillation component. Because this effect does not appear for purely in-plane polarized Love waves, we concluded that the mechanical diode effect is most probably responsible for the SAW-induced lubrication. This explanation is also supported by vertical and longitudinal SAFM measurements, which show that, in areas where friction is completely suppressed, low frequency vertical cantilever oscillations can still be observed, whereas lateral or torsional oscillations are no longer excited.
机译:我们目前在微观机械接触中超声引起的摩擦减小的起源的研究。使用横向力显微镜(LFM)证明了瑞利型表面声波(SAW)引起的摩擦减小对传播和二维驻波场的影响。结果表明,随着波幅的增加,摩擦被完全抑制。为了检测和区分横向和纵向表面振荡分量对悬臂运动的影响,我们采用了多模扫描声力显微镜(SAFM)。我们发现减小摩擦的效果仅归因于垂直振动分量。因为对于纯面内极化的Love波不会出现这种效应,所以我们得出结论,机械二极管效应很可能是SAW引起的润滑的原因。垂直和纵向SAFM测量也支持该解释,该测量表明,在完全抑制摩擦的区域中,仍然可以观察到低频垂直悬臂振动,而不再激发横向或扭转振动。

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