外骨骼
工作区
可穿戴计算机
计算机科学
静力学
自由度(物理和化学)
集合(抽象数据类型)
下肢
上肢
工程类
模拟
机器人
物理医学与康复
人工智能
物理
外科
嵌入式系统
经典力学
医学
程序设计语言
量子力学
作者
Greta Vazzoler,Pietro Bilancia,Giovanni Berselli,Marco Fontana,Antonio Frisoli
标识
DOI:10.1109/icar53236.2021.9659373
摘要
This article reports the preliminary analysis and design of a novel 6 degrees of freedom, passive, upper limb exoskeleton for industrial applications. The aim is to conceive a wearable device to support workers in a vast range of repetitive tasks, offering an effective strategy to reduce the risk of injuries in production lines. The exoskeleton primary purpose is to compensate for the gravity loads acting on the human upper limb via the action of five springs. By reaching the static balancing through the use of passive elements only, several advantages in terms of reduced weight and cost can be provided. In this scenario, a detailed analytical approach has been developed to study the exoskeleton statics and synthesize the springs within the human upper limb workspace. In particular, a 3R balancer is designed for the exoskeleton shoulder joint and a set of computationally efficient optimization studies are carried out to determine the optimal coefficients and positions of the springs. The obtained results have been validated with a commercial multibody tool.
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