用惯性传感器实时检测气动软执行器穿孔并恢复功能
Real-time Puncture Detection and Recovery for Pneumatic Soft Actuators

- 仅用一个陀螺仪采集运动数据,通过异常检测识别穿孔
- 可定位穿孔腔室并评估损伤严重程度,准确率超90%
- 支持故障后自动恢复,适合医疗与人机交互场景
软体机器人凭借其可变形和顺应性,能在人机交互和非结构化环境中实现安全、自适应的互动。气动驱动器是构建软体机器人的常见方式,通常由柔性硅胶材料制成,能实现平滑、灵活的运动。然而,其柔顺特性也使其易受穿孔或撕裂等机械故障影响,限制了实际应用。为此,本文提出一种基于单个惯性测量单元(IMU)运动数据的穿孔检测系统。通过提取特征训练异常检测模型以识别穿孔,同时利用非线性模型估计损伤严重程度。我们还设计了一种多腔室气动软体弯曲执行器,可通过选择性充气实现多种构型。算法结合腔室扰动策略,可定位穿孔腔室并输出严重度评分。异常检测模型在正常运行数据上训练,通过重构误差检测损伤;严重度估计模型则在轻微扰动条件下训练。最后,我们验证了一种故障恢复策略,可在穿孔后维持驱动力。该方法实现了软体机器人系统的实时、数据驱动的损伤检测与容错,显著提升可靠性与安全性。
原文摘要 · Abstract (English)
Soft robots offer safe and adaptive interaction with humans and unstructured environments through their inherent ability to deform and comply. Pneumatic actuators are one way to build soft robots. They are typically made from soft silicone materials and are especially effective for driving such systems, enabling smooth and adaptable motion. However, their compliant nature also makes them vulnerable to mechanical failures like punctures and tears, limiting practical deployment. To address this, we propose a puncture detection system for soft actuators using motion data from a single inertial measurement unit. Extracted features are used to train anomaly detectors for puncture detection and non-linear models to estimate severity. We also introduce a multi-chamber pneumatic soft bending actuator capable of diverse configurations via selective chamber inflation. Our algorithm identifies the punctured chamber and provides a severity score using a chamber perturbation scheme. Anomaly detectors are trained on normal operation data and detect damage through reconstruction errors, while severity is estimated by a separate model trained under slightly modified conditions. Finally, we demonstrate a failure recovery strategy to maintain actuation force post-failure. This approach enhances the reliability and safety of soft robotic systems through real-time, data-driven damage detection.
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