IEEE Trans Haptics. 2023 Oct-Dec;16(4):530-535. doi: 10.1109/TOH.2023.3271128. Epub 2023 Dec 21.
Vibration is a widely used mode of haptic communication, as vibrotactile cues provide salient haptic notifications to users and are easily integrated into wearable or handheld devices. Fluidic textile-based devices offer an appealing platform for the incorporation of vibrotactile haptic feedback, as they can be integrated into clothing and other conforming and compliant wearables. Fluidically driven vibrotactile feedback has primarily relied on valves to regulate actuating frequencies in wearable devices. The mechanical bandwidth of such valves limits the range of frequencies that can be achieved, particularly in attempting to reach the higher frequencies realized with electromechanical vibration actuators ( 100 Hz). In this paper, we introduce a soft vibrotactile wearable device constructed entirely of textiles and capable of rendering vibration frequencies between 183 and 233 Hz with amplitudes ranging from 23 to 114 g. We describe our methods of design and fabrication and the mechanism of vibration, which is realized by controlling inlet pressure and harnessing a mechanofluidic instability. Our design allows for controllable vibrotactile feedback that is comparable in frequency and greater in amplitude relative to state-of-the-art electromechanical actuators while offering the compliance and conformity of fully soft wearable devices.
振动是一种广泛使用的触觉通信方式,因为振动触觉提示为用户提供了明显的触觉通知,并且易于集成到可穿戴或手持设备中。基于流体的纺织设备为集成振动触觉反馈提供了一个有吸引力的平台,因为它们可以集成到服装和其他贴合和顺应性的可穿戴设备中。流体驱动的振动触觉反馈主要依赖于阀来调节可穿戴设备中的致动频率。这种阀的机械带宽限制了可以达到的频率范围,特别是在试图达到机电振动致动器实现的较高频率(100Hz)时。在本文中,我们介绍了一种完全由纺织品构成的柔软振动触觉可穿戴设备,该设备能够产生 183 到 233Hz 之间的振动频率,振幅范围从 23 到 114g。我们描述了我们的设计和制造方法以及振动机制,该机制通过控制入口压力和利用流固力学不稳定性来实现。我们的设计允许进行可控制的振动触觉反馈,与最先进的机电致动器相比,在频率上相当,在振幅上更大,同时提供完全柔软的可穿戴设备的顺应性和贴合性。