A Wearable Pneumatic Device for Continuous, Closed-Loop, Bidirectional Tactile Interaction

📅 2026-08-31
📈 Citations: 0
Influential: 0
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🤖 AI Summary
研究提出了一种可穿戴气动设备,通过集成传感和驱动实现连续、闭环、双向触觉交互,提高了远程操作的精确度和效率。
📝 Abstract
We present a system of two wearable pneumatic haptic devices that supports continuous, closed-loop, bidirectional tactile interaction at perceptually relevant force and temporal scales. A single device can contain up to twelve pressure sensing channels connected to textile-based pneumatic pouches. Each channel in a device can be used as a sensor, an actuator, or both. As an actuator with integrated sensing, the channel generates stable skin indentation through local closed-loop control. As a sensor, a channel can be mounted (or worn) on any surface, including on a robot gripper or on the human body, and used to measure touch interactions with the environment or a human user. A distributed architecture supports sustained pressure output, rapid dynamic response, and wireless pairing of identical devices in a system to transmit and reproduce tactile pressure signals in real time. Device-level characterization demonstrates force bandwidth exceeding 30 Hz, rapid and well-damped step responses, and extended pressure retention compared to prior compact pneumatic platforms. Human studies show that pressure-based fingertip feedback enables discrimination of force and stiffness, improves teleoperated manipulation by reducing applied pressures by up to 23.1% and task duration by up to 27.4%, and lowers subjective mental workload by 18.8%, particularly under visually constrained conditions. By unifying tactile sensing and haptic feedback within a single pneumatic modality, the device provides a practical foundation for bidirectional touch interaction in teleoperation.
Problem

Research questions and friction points this paper is trying to address.

bidirectional tactile interaction
closed-loop control
pneumatic haptic devices
Innovation

Methods, ideas, or system contributions that make the work stand out.

Wearable Pneumatic Device
Bidirectional Tactile Interaction
Closed-Loop Control
Sensing and Actuation Integration
Real-Time Tactile Signal Transmission
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