EMG-Controlled Soft Robotic Bicep Enhancement.

IF 3.8 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Jiayue Zhang, Daniel Vanderbilt, Ethan Fitz, Janet Dong
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引用次数: 0

Abstract

Industrial workers often engage in repetitive lifting tasks. This type of continual loading on their arms throughout the workday can lead to muscle or tendon injuries. A non-intrusive system designed to assist a worker's arms would help alleviate strain on their muscles, thereby preventing injury and minimizing productivity losses. The goal of this project is to develop a wearable soft robotic arm enhancement device that supports a worker's muscles by sharing the load during lifting tasks, thereby increasing their lifting capacity, reducing fatigue, and improving their endurance to help prevent injury. The device should be easy to use and wear, functioning in relative harmony with the user's own muscles. It should not restrict the user's range of motion or flexibility. The human arm consists of numerous muscles that work together to enable its movement. However, as a proof of concept, this project focuses on developing a prototype to enhance the biceps brachii muscle, the primary muscle involved in pulling movements during lifting. Key components of the prototype include a soft robotic muscle or actuator analogous to the biceps, a control system for the pneumatic muscle actuator, and a method for securing the soft muscle to the user's arm. The McKibben-inspired pneumatic muscle was chosen as the soft actuator for the prototype. A hybrid control algorithm, incorporating PID and model-based control methods, was developed. Electromyography (EMG) and pressure sensors were utilized as inputs for the control algorithms. This paper discusses the design strategies for the device and the preliminary results of the feasibility testing. Based on the results, a wearable EMG-controlled soft robotic arm augmentation could effectively enhance the endurance of industrial workers engaged in repetitive lifting tasks.

肌电控制软机器人肱二头肌增强。
产业工人经常从事重复性的起重工作。在整个工作日,这种对手臂的持续负荷会导致肌肉或肌腱损伤。一种非侵入式的辅助工人手臂的系统将有助于减轻他们肌肉的压力,从而防止受伤并将生产力损失降到最低。该项目的目标是开发一种可穿戴的软机械臂增强装置,通过在起重任务中分担负载来支持工人的肌肉,从而增加他们的起重能力,减少疲劳,提高他们的耐力,以帮助防止受伤。该设备应该易于使用和佩戴,与使用者自身的肌肉相对协调地工作。它不应该限制用户的活动范围或灵活性。人的手臂由许多肌肉组成,这些肌肉共同作用,使其能够运动。然而,作为概念验证,该项目侧重于开发一种增强肱二头肌的原型,肱二头肌是举重过程中牵拉运动的主要肌肉。该原型的关键部件包括类似于二头肌的柔性机器人肌肉或致动器、用于气动肌肉致动器的控制系统,以及用于将软肌肉固定到用户手臂上的方法。受mckibben启发的气动肌肉被选为原型机的软执行器。提出了一种结合PID和模型控制方法的混合控制算法。肌电图(EMG)和压力传感器作为控制算法的输入。本文讨论了该装置的设计策略和可行性测试的初步结果。综上所述,可穿戴式肌电控制的柔性机械臂增强装置可以有效地提高工业工人从事重复性举升任务的耐力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Bioengineering
Bioengineering Chemical Engineering-Bioengineering
CiteScore
4.00
自引率
8.70%
发文量
661
期刊介绍: Aims Bioengineering (ISSN 2306-5354) provides an advanced forum for the science and technology of bioengineering. It publishes original research papers, comprehensive reviews, communications and case reports. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. All aspects of bioengineering are welcomed from theoretical concepts to education and applications. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. There are, in addition, four key features of this Journal: ● We are introducing a new concept in scientific and technical publications “The Translational Case Report in Bioengineering”. It is a descriptive explanatory analysis of a transformative or translational event. Understanding that the goal of bioengineering scholarship is to advance towards a transformative or clinical solution to an identified transformative/clinical need, the translational case report is used to explore causation in order to find underlying principles that may guide other similar transformative/translational undertakings. ● Manuscripts regarding research proposals and research ideas will be particularly welcomed. ● Electronic files and software regarding the full details of the calculation and experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material. ● We also accept manuscripts communicating to a broader audience with regard to research projects financed with public funds. Scope ● Bionics and biological cybernetics: implantology; bio–abio interfaces ● Bioelectronics: wearable electronics; implantable electronics; “more than Moore” electronics; bioelectronics devices ● Bioprocess and biosystems engineering and applications: bioprocess design; biocatalysis; bioseparation and bioreactors; bioinformatics; bioenergy; etc. ● Biomolecular, cellular and tissue engineering and applications: tissue engineering; chromosome engineering; embryo engineering; cellular, molecular and synthetic biology; metabolic engineering; bio-nanotechnology; micro/nano technologies; genetic engineering; transgenic technology ● Biomedical engineering and applications: biomechatronics; biomedical electronics; biomechanics; biomaterials; biomimetics; biomedical diagnostics; biomedical therapy; biomedical devices; sensors and circuits; biomedical imaging and medical information systems; implants and regenerative medicine; neurotechnology; clinical engineering; rehabilitation engineering ● Biochemical engineering and applications: metabolic pathway engineering; modeling and simulation ● Translational bioengineering
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