IEEE Trans Haptics. 2023 Jul-Sep;16(3):436-448. doi: 10.1109/TOH.2023.3308789. Epub 2023 Sep 19.
Haptic technology is a critical component of human-computer interfaces. Traditional haptic actuators are often unable to provide the broad frequency range and latency that is required in many advanced applications. To address this problem, we propose a new type of tactor based on macro-fiber composites (MFCs), composites of piezoelectric fibers. We propose a physics-based model for the actuation of the tactors, calibrated and validated through experiments. As our tactors are intended for haptic applications, we consider the role of skin on their response, an aspect seldom analyzed in the literature. In our experiments, we simulate the presence of the skin with a rubber membrane in contact with the tactor, with varying pre-stretch, mimicking different indentations of the tactor on the skin. The MFC-based tactor can always generate vibration amplitudes higher than skin discrimination thresholds, over the range of frequencies of interest for haptics, with a latency much smaller than traditional actuators. We theoretically investigate the effect of the skin on tactor vibrations, highlighting the individual roles of skin stiffness and damping and their combined effect across a series of pre-stretches. Our tactor shows promise in haptic applications, including assistive technologies and real-time feedback systems for training, safety, and monitoring.
触觉技术是人机交互界面的关键组成部分。传统的触觉致动器通常无法提供许多先进应用所需的宽频率范围和低延迟。为了解决这个问题,我们提出了一种基于宏观纤维复合材料(MFC)的新型致动器,这是一种由压电纤维组成的复合材料。我们提出了一种基于物理的致动器模型,并通过实验进行了校准和验证。由于我们的致动器用于触觉应用,我们考虑了皮肤对其响应的作用,这是文献中很少分析的一个方面。在我们的实验中,我们用接触致动器的橡胶膜模拟皮肤的存在,并改变预拉伸,模拟致动器在皮肤上的不同压痕。基于 MFC 的致动器在触觉感兴趣的频率范围内,始终可以产生高于皮肤识别阈值的振动幅度,其延迟远小于传统致动器。我们从理论上研究了皮肤对致动器振动的影响,突出了皮肤刚度和阻尼的单独作用以及它们在一系列预拉伸下的综合作用。我们的致动器在触觉应用中具有广阔的应用前景,包括辅助技术和用于培训、安全和监测的实时反馈系统。