IEEE Trans Haptics. 2017 Oct-Dec;10(4):488-499. doi: 10.1109/TOH.2017.2704603. Epub 2017 May 16.
In this study, we investigated the effect of input voltage waveform on our haptic perception of electrovibration on touch screens. Through psychophysical experiments performed with eight subjects, we first measured the detection thresholds of electrovibration stimuli generated by sinusoidal and square voltages at various fundamental frequencies. We observed that the subjects were more sensitive to stimuli generated by square wave voltage than sinusoidal one for frequencies lower than 60 Hz. Using Matlab simulations, we showed that the sensation difference of waveforms in low fundamental frequencies occurred due to the frequency-dependent electrical properties of human skin and human tactile sensitivity. To validate our simulations, we conducted a second experiment with another group of eight subjects. We first actuated the touch screen at the threshold voltages estimated in the first experiment and then measured the contact force and acceleration acting on the index fingers of the subjects moving on the screen with a constant speed. We analyzed the collected data in the frequency domain using the human vibrotactile sensitivity curve. The results suggested that Pacinian channel was the primary psychophysical channel in the detection of the electrovibration stimuli caused by all the square-wave inputs tested in this study. We also observed that the measured force and acceleration data were affected by finger speed in a complex manner suggesting that it may also affect our haptic perception accordingly.
在这项研究中,我们研究了输入电压波形对触摸屏上电振动触觉感知的影响。通过对 8 名受试者进行心理物理实验,我们首先测量了由正弦波和方波电压在不同基频下产生的电振动刺激的检测阈值。我们观察到,对于低于 60 Hz 的频率,受试者对方波电压产生的刺激比正弦波电压更敏感。使用 Matlab 模拟,我们表明在低基频下,波形的感觉差异是由于人体皮肤的频率相关电特性和人体触觉灵敏度。为了验证我们的模拟,我们用另一组 8 名受试者进行了第二次实验。我们首先在第一组实验中估计的阈值电压下驱动触摸屏,然后测量以恒定速度在屏幕上移动的受试者食指上的接触力和加速度。我们使用人体振动触觉灵敏度曲线在频域中分析收集的数据。结果表明,在本研究中测试的所有方波输入引起的电振动刺激的检测中,Pacinian 通道是主要的心理物理通道。我们还观察到,测量的力和加速度数据以复杂的方式受到手指速度的影响,这表明它也可能相应地影响我们的触觉感知。