用细长水管同时传力和测位,实现无传感器远程机器人精准控制。
SHAPE: Simultaneous Water Hydraulic Actuation and Position Estimation of a Sensorless Remote Actuator through a Thin and Long Flexible Tube

- 通过压力波动建模管路容积损耗,实现无传感器位置估计
- 50米长管内稳定控制水压缸在变载荷下的位置
- 无需传感器即可识别管路参数,适合恶劣环境机器人
机器人传感器和电子设备在恶劣环境中易失效。采用水压驱动的细长管可实现无传感器的远程操作,且管路弹性降低关节阻抗,有利于应对环境意外接触或振动的任务。然而,由于低阻抗和相机可视性差,在变载荷下精确控制关节(或末端执行器)至目标位置仍具挑战。本文提出一种新方法:利用充水柔性管同时传输驱动力和获取执行器侧信息,无需执行器端传感器。基于压力波动建模传输过程中的容积损失,并考虑微量空气滞留影响,实现了长达50米的管路中同步功率传输与位置估计。由此可实现此前难以在无传感器系统中应用的反馈控制框架。实验验证了在变载荷下无传感器水压缸的位置控制稳定性。此外,提出一种场外参数辨识方法,可在不依赖执行器端传感器的前提下处理管路与空气滞留的差异性。该成果推动了恶劣环境下机器人的可靠远程控制。
原文摘要 · Abstract (English)
Robot sensors and electronic equipment are prone to failure in harsh environments. With water hydraulic drive, thin and long tubes enable remote operation without actuator-side sensors. Furthermore, the elasticity of the tubes reduces the impedance of the joints (actuators), benefiting robot tasks involving unexpected contact with the environment or vibrations. However, owing to the low impedance and limited camera visibility, accurately positioning the joint (or end effector) to the target location under varying load conditions is challenging. This study proposes a novel method that employs water-filled flexible tubes to enable the transmission of driving power and actuator-side information to and from the actuator, respectively, without actuator-side sensors. By modeling volumetric loss during transmission based on pressure fluctuations and incorporating minor air entrapment, simultaneous power transmission and position estimation is achieved through a tube up to 50 m. Thus, it becomes possible to use a feedback control framework that was previously difficult to implement in sensorless systems. Experimental validation confirms stable position control of a sensorless water hydraulic cylinder under varying loads. Furthermore, a field parameter-identification method accounts for tube and air entrainment variability without requiring actuator-side sensors. These contributions promote reliable remote control of robots in harsh environments.
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