Mechanical Structure Design and Dynamics Simulation of an Exoskeleton Leg Rehabilitation Robot

2026-99-0902

8/7/2026

Authors
Abstract
Content
In response to the challenges of training and rehabilitation for patients with leg dysfunction, this research focuses on two core requirements: “bionic adaptation” and “safety assistance”. It introduces a novel exoskeleton leg rehabilitation robot designed to support diverse rehabilitation exercises for individuals with leg disabilities during therapy. The robot system consists of a lumbar support structure, thigh mechanical components, calf mechanical components, leg fixation straps, and foot mechanical structures, and achieves multi degree of freedom motion simulation through three main joints: hip joint, knee joint, and ankle joint. Each mechanical leg has three independent degrees of freedom, which can effectively simulate the natural movements of the human lower limb, such as flexion, extension, abduction, etc., during the gait cycle, thus meeting the functional needs of patients for different movement modes during rehabilitation training.
On the basis of structural design, this study further utilizes multi-body dynamics simulation software ADAMS to conduct kinematic and dynamic analysis of the exoskeleton robot. By simulating the joint torque of the exoskeleton legs under ideal working conditions, the rationality and smoothness of the mechanism design are verified. The simulation results not only reflect the performance of the robot in typical rehabilitation actions, but also provide a theoretical basis and data support for the selection and parameter matching of key execution components (such as servo motors, reducers, etc.), laying an important foundation for the physical development and control strategy optimization of the robot system.
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DOI
https://doi.org/10.4271/2026-99-0902
Citation
Mu, X., Ma, C., Li, W., Pu, S., et al., "Mechanical Structure Design and Dynamics Simulation of an Exoskeleton Leg Rehabilitation Robot," 2025 International Symposium on Mechatronics and Automation (ISMA 2025), Guiyang, China, September 19, 2025, https://doi.org/10.4271/2026-99-0902.
Additional Details
Publisher
Published
Aug 07
Product Code
2026-99-0902
Content Type
Technical Paper
Language
English