TY - JOUR
T1 - Modeling and Analysis of a Coupled Human–Robot System With Walking Assistance by Exoskeletons
AU - Liu, Yu
AU - Wang, Zilu
AU - Zhou, Zhihao
AU - Wang, Rongli
AU - Ikegami, Yosuke
AU - Huang, Qiang
AU - Nakamura, Yoshihiko
AU - Huang, Yan
N1 - Publisher Copyright:
© 2016 IEEE.
PY - 2026
Y1 - 2026
N2 - Systematic evaluation of an exoskeleton based on dynamics analysis is important for optimization of mechanical design and control strategy. Most existing evaluation methods are based on metabolic cost or Electromyography (EMG) signals. Both these kinds of methods do not directly provide whole body muscle force information from the human-exoskeleton coupled system, thus presenting limitations in revealing muscle-level dynamic mechanisms. In this work, we establish an inverse dynamics calculation approach of human-exoskeleton coupled systems by combining a human musculoskeletal model, an exoskeleton model, and a Kelvin-Voigt model. Human motion experiments at three walking speeds in unloaded condition and wearing a powered hip exoskeleton with transparent condition and three assistance conditions are also conducted. An optical motion capture, an EMG measurement device and a force sensing treadmill are used to collect motion data. The effects of exoskeleton assistance condition on human joint torques and muscle forces during specific gait phases are analyzed. Thus human-performance-augmentation exoskeletons can be evaluated based on muscle-level dynamics, which could be helpful in exploring insights into motion assistance mechanisms and optimizing the motion control strategy of exoskeletons.
AB - Systematic evaluation of an exoskeleton based on dynamics analysis is important for optimization of mechanical design and control strategy. Most existing evaluation methods are based on metabolic cost or Electromyography (EMG) signals. Both these kinds of methods do not directly provide whole body muscle force information from the human-exoskeleton coupled system, thus presenting limitations in revealing muscle-level dynamic mechanisms. In this work, we establish an inverse dynamics calculation approach of human-exoskeleton coupled systems by combining a human musculoskeletal model, an exoskeleton model, and a Kelvin-Voigt model. Human motion experiments at three walking speeds in unloaded condition and wearing a powered hip exoskeleton with transparent condition and three assistance conditions are also conducted. An optical motion capture, an EMG measurement device and a force sensing treadmill are used to collect motion data. The effects of exoskeleton assistance condition on human joint torques and muscle forces during specific gait phases are analyzed. Thus human-performance-augmentation exoskeletons can be evaluated based on muscle-level dynamics, which could be helpful in exploring insights into motion assistance mechanisms and optimizing the motion control strategy of exoskeletons.
KW - exoskeleton
KW - human musculoskeletal model
KW - Human-robot coupled system
KW - inverse dynamics calculation
UR - https://www.scopus.com/pages/publications/105043467355
U2 - 10.1109/LRA.2026.3706935
DO - 10.1109/LRA.2026.3706935
M3 - Article
AN - SCOPUS:105043467355
SN - 2377-3766
JO - IEEE Robotics and Automation Letters
JF - IEEE Robotics and Automation Letters
ER -