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VibroTouch:一种通过振动进行接触检测和力感测的主动触觉传感器。

VibroTouch: Active Tactile Sensor for Contact Detection and Force Sensing via Vibrations.

机构信息

Robotics Department, Nazarbayev University, Nur-Sultan 010000, Kazakhstan.

Physics Department, Nazarbayev University, Nur-Sultan 010000, Kazakhstan.

出版信息

Sensors (Basel). 2022 Aug 27;22(17):6456. doi: 10.3390/s22176456.

Abstract

Accurate and fast contact detection between a robot manipulator and objects is crucial for safe robot-object and human-robot interactions. Traditional collision detection techniques relied on force-torque sensors and Columb friction cone estimation. However, the strain gauges used in the conventional force sensors require low-noise and high-precision electronics to deliver the signal to the final user. The Signal-to-Noise Ratio (SNR) in these devices is still an issue in light contact detection. On the other hand, the Eccentric Rotating Mass (ERM) motors are very sensitive to subtle touch as their vibrating resonant state loses immediately. The vibration, in this case, plays a core role in triggering the tactile event. This project's primary goal is to use generated and received vibrations to establish the scope of object properties that can be obtained through low-frequency generation on one end and Fourier analysis of the accelerometer data on the other end. The main idea behind the system is the phenomenon of change in vibration propagation patterns depending on the grip properties. Moreover, the project's original aim is to gather enough information on vibration feedback on objects of various properties and compare them. These data sets are further analyzed in terms of frequency and applied grip force correlations in order to prepare the ground for pattern extraction and recognition based on the physical properties of an object.

摘要

准确、快速地检测机器人与物体之间的接触,对于安全的机器人与物体交互和人机交互至关重要。传统的碰撞检测技术依赖于力/扭矩传感器和库仑摩擦锥估计。然而,传统力传感器中使用的应变计需要低噪声和高精度的电子设备将信号传输到最终用户。在轻触检测方面,这些设备的信噪比(SNR)仍然是一个问题。另一方面,偏心旋转质量(ERM)电机对细微的触摸非常敏感,因为它们的振动谐振状态会立即丢失。在这种情况下,振动在触发触觉事件中起着核心作用。该项目的主要目标是利用产生和接收的振动来确定可以通过低频产生在一端和加速度计数据的傅里叶分析在另一端获得的物体属性的范围。该系统背后的主要思想是根据握持特性改变振动传播模式的现象。此外,该项目的最初目的是收集关于各种属性物体振动反馈的足够信息并进行比较。进一步根据频率和施加的夹持力相关性对这些数据集进行分析,以便为基于物体物理特性的模式提取和识别做好准备。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fec8/9460586/69f386f68d1d/sensors-22-06456-g006.jpg

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