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Main Authors: Yang, Sibo, Luo, Lincong, Law, Wei Chuan, Wang, Youlong, Li, Lei, Ang, Wei Tech
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2404.03149
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author Yang, Sibo
Luo, Lincong
Law, Wei Chuan
Wang, Youlong
Li, Lei
Ang, Wei Tech
author_facet Yang, Sibo
Luo, Lincong
Law, Wei Chuan
Wang, Youlong
Li, Lei
Ang, Wei Tech
contents We developed a 3D end-effector type of upper limb assistive robot, named as Assistive Robotic Arm Extender (ARAE), that provides transparency movement and adaptive arm support control to achieve home-based therapy and training in the real environment. The proposed system composes five degrees of freedom, including three active motors and two passive joints at the end-effector module. The core structure of the system is based on a parallel mechanism. The kinematic and dynamic modeling are illustrated in detail. The proposed adaptive arm support control framework calculates the compensated force based on the estimated human arm posture in 3D space. It firstly estimates human arm joint angles using two proposed methods: fixed torso and sagittal plane models without using external sensors such as IMUs, magnetic sensors, or depth cameras. The experiments were carried out to evaluate the performance of the two proposed angle estimation methods. Then, the estimated human joint angles were input into the human upper limb dynamics model to derive the required support force generated by the robot. The muscular activities were measured to evaluate the effects of the proposed framework. The obvious reduction of muscular activities was exhibited when participants were tested with the ARAE under an adaptive arm gravity compensation control framework. The overall results suggest that the ARAE system, when combined with the proposed control framework, has the potential to offer adaptive arm support. This integration could enable effective training with Activities of Daily Living (ADLs) and interaction with real environments.
format Preprint
id arxiv_https___arxiv_org_abs_2404_03149
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Design and Evaluation of a Compact 3D End-effector Assistive Robot for Adaptive Arm Support
Yang, Sibo
Luo, Lincong
Law, Wei Chuan
Wang, Youlong
Li, Lei
Ang, Wei Tech
Robotics
We developed a 3D end-effector type of upper limb assistive robot, named as Assistive Robotic Arm Extender (ARAE), that provides transparency movement and adaptive arm support control to achieve home-based therapy and training in the real environment. The proposed system composes five degrees of freedom, including three active motors and two passive joints at the end-effector module. The core structure of the system is based on a parallel mechanism. The kinematic and dynamic modeling are illustrated in detail. The proposed adaptive arm support control framework calculates the compensated force based on the estimated human arm posture in 3D space. It firstly estimates human arm joint angles using two proposed methods: fixed torso and sagittal plane models without using external sensors such as IMUs, magnetic sensors, or depth cameras. The experiments were carried out to evaluate the performance of the two proposed angle estimation methods. Then, the estimated human joint angles were input into the human upper limb dynamics model to derive the required support force generated by the robot. The muscular activities were measured to evaluate the effects of the proposed framework. The obvious reduction of muscular activities was exhibited when participants were tested with the ARAE under an adaptive arm gravity compensation control framework. The overall results suggest that the ARAE system, when combined with the proposed control framework, has the potential to offer adaptive arm support. This integration could enable effective training with Activities of Daily Living (ADLs) and interaction with real environments.
title Design and Evaluation of a Compact 3D End-effector Assistive Robot for Adaptive Arm Support
topic Robotics
url https://arxiv.org/abs/2404.03149