定制力传感器和感官反馈系统,使机器人假肢的抓地力控制

Nabeel Seedat, I. Mohamed, A. Mohamed
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引用次数: 4

摘要

生活在发展中国家的截肢者可以从一种灵巧的低成本机器人假肢中受益匪浅,这种假肢可以通过肌电图(EMG)来控制。这项研究解决了设计和制造这种低成本设备的部分挑战。本文特别介绍了新型、功能合适的指尖传感器的发展。传感器允许经过肱骨截肢的用户通过放置在二头肌上的肌电图电极以及触觉感觉反馈系统直观地控制机械假手的握力。指尖传感器显示出与力的稳定线性关系,对指尖远端指间关节上方的指髓和手指内侧和外侧的力具有均匀的敏感性。此外,它的建造成本很低(1美元),并且能够安装在曲面上。两名测试对象评估了传感器与触觉反馈系统相结合的性能。新型传感器的使用允许测试对象区分每个手指在抓取不同形状的物体时所经历的力,准确度分别为80%和73%。因此,指尖传感器和触觉反馈可以为截肢者提供一个可能的解决方案,以低成本恢复触觉。这是为截肢者制造具有成本效益($($ pm\$ 150)$)但功能强大的机器人假肢的一步。
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Custom Force Sensor and Sensory Feedback System to Enable Grip Control of a Robotic Prosthetic Hand
Amputees living in the developing world can benefit greatly from a dexterous low-cost robotic prosthetic hand that can be controlled via electromyography (EMG). This research addresses part of the challenge of designing and constructing such a low-cost device. In particular, the development of novel and functionally suitable fingertip sensors is presented in this paper. The sensors allowed for the user with a trans-humeral amputation to intuitively control grip strength of the robotic prosthetic hand with the help of an EMG electrode placed on the bicep muscle, as well as, a haptic sensory feedback system. The fingertip sensors illustrated a stable linear relationship with force, an even sensitivity to force over the pulp of finger and the medial and lateral sides of the finger above the distal inter-phalangeal joint across the fingertip. Additionally, it had a low cost of construction ($1.00) and the ability to fit on curved surfaces. Two test subjects evaluated the performance of the sensors in combination with the haptic sensory feedback system. The use of the novel sensors allowed for the test subjects to discriminate the forces experienced by each finger when gripping objects of different shapes, with an accuracy of 80% and 73% accuracy respectively. Hence, the fingertip sensors along with haptic feedback can provide a possible solution for amputees to regain the sense a touch and at a low cost. This is a step towards a cost effective ($(\pm\$ 150)$, yet functional robotic prosthetic hand for amputees.
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