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宽频振动触觉与摩擦调制表面光栅的比较。

Comparison of Wide-Band Vibrotactile and Friction Modulation Surface Gratings.

出版信息

IEEE Trans Haptics. 2021 Oct-Dec;14(4):792-803. doi: 10.1109/TOH.2021.3075905. Epub 2021 Dec 16.

Abstract

This article seeks to understand conditions under which virtual gratings produced via vibrotaction and friction modulation are perceived as similar and to find physical origins in the results. To accomplish this, we developed two single-axis devices, one based on electroadhesion and one based on out-of-plane vibration. The two devices had identical touch surfaces, and the vibrotactile device used a novel closed-loop controller to achieve precise control of out-of-plane plate displacement under varying load conditions across a wide ranget of frequencies. A first study measured the perceptual intensity equivalence curve of gratings generated under electroadhesion and vibrotaction across the 20-400 Hz frequency range. A second study assessed the perceptual similarity between two forms of skin excitation given the same driving frequency and same perceived intensity. Our results indicate that it is largely the out-of-plane velocity that predicts vibrotactile intensity relative to shear forces generated by friction modulation. A high degree of perceptual similarity between gratings generated through friction modulation and through vibrotaction is apparent and tends to scale with actuation frequency suggesting perceptual indifference to the manner of fingerpad actuation in the upper frequency range.

摘要

本文旨在探讨通过振动和摩擦调制产生的虚拟光栅在何种条件下被感知为相似的,并在结果中找到物理起源。为了实现这一目标,我们开发了两种单轴设备,一种基于电动粘附,另一种基于面外振动。这两个设备具有相同的触感表面,而振动触觉设备使用了一种新的闭环控制器,在很宽的频率范围内实现了在不同负载条件下对面外板位移的精确控制。第一项研究测量了在 20-400 Hz 频率范围内通过电动粘附和振动产生的光栅的感知强度等效曲线。第二项研究评估了在相同驱动频率和相同感知强度下两种形式的皮肤激励之间的感知相似性。我们的结果表明,在很大程度上,面外速度可以预测相对于摩擦调制产生的剪切力的振动触觉强度。通过摩擦调制和振动产生的光栅之间具有很高的感知相似性,并且倾向于与驱动频率成比例,这表明在较高频率范围内,对指垫驱动方式的感知是无差别的。

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