Shultz Craig, Peshkin Michael, Colgate J Edward, Shultz Craig, Peshkin Michael, Colgate J Edward, Shultz Craig, Peshkin Michael, Colgate J Edward
IEEE Trans Haptics. 2018 Apr-Jun;11(2):279-290. doi: 10.1109/TOH.2018.2793867.
We report an electroadhesive approach to controlling friction forces on sliding fingertips which is capable of producing vibrations across an exceedingly broad range of tactile, audible, and ultrasonic frequencies. Vibrations on the skin can be felt directly, and vibrations in the air can be heard emanating from the finger. Additionally, we report evidence from an investigation of the electrical dynamics of the system suggesting that an air gap at the skin/surface interface is primarily responsible for the induced electrostatic attraction underlying the electroadhesion effect. We developed an experimental apparatus capable of recording friction forces up to a frequency of 6 kHz, and used it to characterize two different electroadhesive systems, both of which exhibit flat force magnitude responses throughout the measurement range. These systems use custom electrical hardware to modulate a high frequency current and apply surprisingly low distortion, broadband forces to the skin. Recordings of skin vibrations with a laser Doppler vibrometer demonstrate the tactile capabilities of the system, while recordings of vibrations in the air with a MEMS microphone quantify the audible response and reveal the existence of ultrasonic forces applied to the skin via electronic friction modulation. Implications for surface haptic and audio-haptic displays are briefly discussed.
我们报告了一种用于控制滑动指尖上摩擦力的电粘附方法,该方法能够在极其广泛的触觉、可听和超声频率范围内产生振动。皮肤上的振动可以直接感觉到,手指发出的空气中的振动也能听到。此外,我们报告了对该系统电动力学研究的证据,表明皮肤/表面界面处的气隙是电粘附效应背后诱导静电吸引的主要原因。我们开发了一种能够记录高达6 kHz频率摩擦力的实验装置,并用它来表征两种不同的电粘附系统,这两种系统在整个测量范围内都呈现出平坦的力大小响应。这些系统使用定制的电气硬件来调制高频电流,并向皮肤施加失真极低的宽带力。用激光多普勒振动计记录皮肤振动证明了该系统的触觉能力,而用MEMS麦克风记录空气中的振动则量化了可听响应,并揭示了通过电子摩擦调制施加到皮肤上的超声力的存在。本文还简要讨论了其对表面触觉和音频触觉显示的意义。