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September 27, 2025Robotica2 citations

Design and analysis of an adaptive cable-driven knee unloading exoskeleton based on a rhombus linkage mechanism

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YGYu Gang GuoYXYang XiaoZCZiming Chen

Key Points

  • The exoskeleton system demonstrates significant knee joint unloading capabilities during walking scenarios.
  • Simulation outputs indicate a peak support force of 195.8 N with minimal interference to human motion.
  • A novel rhombus linkage mechanism provides adaptive kinematics without precise alignment to the knee axis.
  • Experimental trials with five subjects confirm low deviation in joint angles, maintaining biocompatibility.

Abstract

Abstract Biomechanical intervention on lower limb joints using exoskeletons to reduce joint loads and provide walking assistance has become a research hotspot in the fields of rehabilitation and elderly care. To address the challenges of human-exoskeleton (H-E) kinematic compatibility and knee joint unloading demands, this study proposes a novel rhombus linkage exoskeleton mechanism capable of adaptive knee motion without requiring precise alignment with the human knee axis. The exoskeleton is driven by a Bowden cable system to provide thigh support, thereby achieving effective knee joint unloading. Based on the screw theory, the degrees of freedom (DOF) of the exoskeleton mechanism (DOF = 3) and the H-E closed-loop mechanism (DOF = 1) were analyzed, and the kinematic model of the exoskeleton and the H-E closed-loop kinematic model were established, respectively. A mechanical model of the driving system was developed, and a simulation was conducted to validate the accuracy of the model. The output characteristics of the cable-driven system were investigated under varying bending angles and bending times. A prototype was fabricated and tested in wearable scenarios. The experimental results demonstrate that the exoskeleton system exhibits excellent biocompatibility and weight-bearing support capability. Compatibility tests confirm that the exoskeleton does not interfere with human motion. Through human-in-the-loop optimization, the optimal Bowden cable output force profile was obtained, which minimizes gait impact while achieving a peak support force of 195. 8 N. Further validation from wear trials with five subjects confirms the system’s low interference with natural human motion (maximum lower-limb joint angle deviation of only 8^).

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Cite This Study

Guo et al. (2025) studied this question.

synapsesocial.com/papers/68d7be70eebfec0fc5238430https://doi.org/10.1017/s0263574725102142
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