Cerveri Pietro, Quinzi Mauro, Bovio Dario, Frigo Carlo Albino
IEEE Trans Haptics. 2017 Jul-Sep;10(3):317-324. doi: 10.1109/TOH.2016.2636822. Epub 2016 Dec 7.
Artificial tactile sensing is a challenging research topic in robotics, motor control, and rehabilitation engineering encompassing multi-disciplinary skills and different technologies. This paper presents the development of a wearable tactile thimble system using MEMS barometric sensors and flexible printed circuit board. Barometric sensors were carefully processed to make them able to transduce contact forces. Thumb, index, and medium fingers were equipped with an array of six sensing elements each, covering the central, lateral, and medial aspects of the fingertip. The sensor integration, signal read-out and processing, hardware architecture of the device, along with the calibration protocol, were described. The test results showed adequate sensitivity at very low forces with an almost linear transduction range up to about 4N (RMSE: 0.04N). Tests on object manipulation tasks highlighted the value of the proposed system demonstrating the ability of measuring both the force amplitude and contact points, demonstrating the suitability of barometric sensors for tactile applications.
人工触觉传感是机器人技术、运动控制和康复工程领域中一个具有挑战性的研究课题,涉及多学科技能和不同技术。本文介绍了一种使用微机电系统(MEMS)气压传感器和柔性印刷电路板的可穿戴触觉顶针系统的开发。对气压传感器进行了精心处理,使其能够转换接触力。拇指、食指和中指各配备了一组六个传感元件,覆盖指尖的中央、外侧和内侧部分。描述了传感器集成、信号读出与处理、设备的硬件架构以及校准协议。测试结果表明,在非常低的力作用下具有足够的灵敏度,在高达约4N的范围内几乎呈线性转换(均方根误差:0.04N)。对物体操纵任务的测试突出了所提出系统的价值,证明了其测量力幅值和接触点的能力,表明气压传感器适用于触觉应用。